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    <TD>Analytical and Bioanalytical Chemistry</TD></TR>
  <TR>
    <TD>=A9&nbsp;Springer-Verlag&nbsp;2006 </TD></TR>
  <TR>
    <TD>10.1007/s00216-006-0646-4</TD></TR></TBODY></TABLE><!--Begin =
Abstract-->
<H2 class=3Drubric>Original Paper</H2>
<DIV class=3DHeading1><A name=3Dtitle></A>The de Br=E9cy Madonna and =
Child tondo=20
painting: a Raman spectroscopic analysis </DIV>
<P class=3DAuthorGroup>Howell&nbsp;G.&nbsp;M.&nbsp;Edwards<SUP>1&nbsp;<A =

href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#ContactOfAuthor1"><IMG=20
alt=3D"Contact Information"=20
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/contact.gif"=20
border=3D0></A></SUP> and Timothy&nbsp;J.&nbsp;Benoy<SUP>2</SUP></P>
<TABLE>
  <TBODY>
  <TR vAlign=3Dtop>
    <TD><SPAN class=3DAffiliation><A =
name=3DAff1></A>(1)&nbsp;</SPAN></TD>
    <TD><SPAN class=3DAffiliation>Molecular Spectroscopy Group, =
University=20
      Analytical Centre &amp; Chemical and Forensic Sciences, University =
of=20
      Bradford, Norcroft Building, Bradford, BD7 1DP,=20
UK</SPAN></TD></TR></TBODY></TABLE>
<TABLE>
  <TBODY>
  <TR vAlign=3Dtop>
    <TD><SPAN class=3DAffiliation><A =
name=3DAff2></A>(2)&nbsp;</SPAN></TD>
    <TD><SPAN class=3DAffiliation>The de Br=E9cy Trust, de Br=E9cy =
House, Lower=20
      Withington, Macclesfield, Cheshire, SK11 9DF,=20
UK</SPAN></TD></TR></TBODY></TABLE>
<P><A name=3DContactOfAuthor1></A></P>
<TABLE class=3DContact>
  <TBODY>
  <TR>
    <TD vAlign=3Dtop><IMG alt=3D"Contact Information"=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/contact.gif"=20
      border=3D0></TD>
    =
<TD><STRONG>Howell&nbsp;</STRONG><STRONG>G.&nbsp;</STRONG><STRONG>M.&nbsp=
;</STRONG><STRONG>Edwards</STRONG><STRONG></STRONG><BR><STRONG>Email:=20
      </STRONG><A=20
      =
href=3D"mailto:h.g.m.edwards@bradford.ac.uk">h.g.m.edwards@bradford.ac.uk=
</A></TD></TR></TBODY></TABLE>
<P class=3DAffiliation><STRONG>Received:=20
</STRONG>13&nbsp;April&nbsp;2006&nbsp;&nbsp;<STRONG>Revised:=20
</STRONG>20&nbsp;June&nbsp;2006&nbsp;&nbsp;<STRONG>Accepted:=20
</STRONG>21&nbsp;June&nbsp;2006&nbsp;&nbsp;<STRONG>Published online:=20
</STRONG>26&nbsp;July&nbsp;2006 </P>
<DIV class=3DAbstract><A name=3DAbs1></A><SPAN=20
class=3DAbstractHeading>Abstract&nbsp;&nbsp;</SPAN>Raman spectra have =
been=20
obtained from a Madonna and Child tondo painting, known as the de =
Br=E9cy Tondo.=20
Despite the provision of only a small number of microscopic samples, =
definitive=20
spectra were obtained from mineral pigments. From one specimen, spectra =
of an=20
organic binder enabled the consideration of several possibilities to be=20
accomplished and a suggestion proposed for the medium. In another =
specimen the=20
identification of the spectral signatures of Prussian blue, which was =
only=20
synthesised some 200&nbsp;years after the predicated date of execution =
of the=20
painting, indicated that some unrecorded restoration had been undertaken =
later=20
in the painting=92s history. Research* carried out on this tondo from =
1987 to 1991=20
indicated the probability that it is the work of Raphael, a conclusion =
supported=20
by further research recently undertaken on the provenance. The stylistic =

similarity of the tondo to Raphael=92s Sistine Madonna is very clear; =
the pigments=20
identified in this analysis are consistent with a Renaissance =
attribution for=20
the de Br=E9cy Tondo. </DIV>
<P class=3DKeyword><SPAN=20
class=3DKeywordHeading>Keywords&nbsp;&nbsp;</SPAN>Raphael&nbsp;-&nbsp;Ram=
an=20
spectroscopy&nbsp;-&nbsp;Renaissance=20
art&nbsp;-&nbsp;Madonna&nbsp;-&nbsp;Pigments&nbsp;-&nbsp;Tondo painting =
</P>
<DIV class=3DArticleNote><SPAN class=3D"">*Dr Murdoch Lothian, <I>The =
Methods=20
Employed to Provenance and to Attribute Putative Works by Raphael</I>, =
Ph.D.=20
Thesis, 1991.</SPAN></DIV>
<DIV class=3D""><A name=3DSec1></A>
<HR>

<DIV class=3Dheading2>Introduction</DIV>
<DIV class=3D""><A name=3DSec2></A>
<DIV class=3DHeading3>Prologue</DIV>
<DIV class=3DPara>
<DIV class=3D"">Raffaelo Sanzio, Raphael, 1483=961520, born in Urbino, =
Italy; a=20
master painter of the Italian High Renaissance, renowned for his large =
figure=20
compositions, clarity of form and achievement of visual perfection. =
Contemporary=20
with Michelangelo Buonarroti and Leonardo da Vinci, Raphael is best =
known for=20
his Madonnas. His tondi depicting Mary and the infant Jesus painted in=20
1504=961514, represented a rare departure from the accepted Renaissance =
style in=20
their circular format=97with no top or bottom lines the pictures are =
devoid of=20
vertical or horizontal axes, resulting in a subtlety of natural =
composition=20
accentuating the Madonna=92s protective encirclement of her infant =
within the=20
curved edge of the visible painting. Recently, another one of these =
tondi has=20
been recognised and forms the subject of this Raman spectroscopic study. =
The=20
stylistic similarity between the de Br=E9cy Tondo (Fig.&nbsp;<A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#Fig1">1</A>),=20
the subject of this investigation, and the Sistine Madonna of Raphael=20
(Fig.&nbsp;<A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#Fig2">2</A>)=20
is very clear. That the de Br=E9cy Tondo is not simply a copy of the =
Sistine=20
Madonna is evident from the presence of several<I> pentimenti</I> in the =
former;=20
these are original modifications and alterations which have been carried =
out=20
during the execution of a painting which become manifest during infrared =
or=20
X-ray studies and which typically involve small changes to eye-lines, =
facial=20
expressions and positioning of hands as have been observed in this =
painting.=20
However, in the de Br=E9cy Tondo shown in Fig.&nbsp;<A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#Fig1">1</A>,=20
a more obvious <I>pentimento</I> is seen in the presence of the shadowy=20
Madonna=92s scarf at the bottom left of the composition, where the =
thinning of the=20
overpainted layer has exposed the underlying subject. It is likely =
therefore=20
that the de Br=E9cy Tondo is in fact an earlier art work than the =
Sistine Madonna,=20
since the various<I> pentimenti</I>, and particularly the =
above-mentioned overt=20
<I>pentimento</I>, are evidence of the painting=92s originality.=20
<DIV class=3DFigure><A name=3DFig1></A><IMG=20
alt=3DMediaObjects/216_2006_646_Fig1_HTML.jpg=20
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/216_2006_646_Fig1_HTML.jpg"></DIV>
<DIV class=3DCapt><SPAN class=3DCaptNr>Fig.&nbsp;1&nbsp;</SPAN>The de =
Br=E9cy Tondo: a=20
Renaissance Madonna and Child attributed to Raphael, ca. 1512 </DIV>
<HR>

<DIV class=3DFigure><A name=3DFig2></A><IMG=20
alt=3DMediaObjects/216_2006_646_Fig2_HTML.jpg=20
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/216_2006_646_Fig2_HTML.jpg"></DIV>
<DIV class=3DCapt><SPAN class=3DCaptNr>Fig.&nbsp;2&nbsp;</SPAN>The =
Sistine Madonna=20
of Raphael, now in the Gemaldegalerie Alte Meister, Dresden </DIV>
<HR>
</DIV></DIV>
<P class=3D"">On a reverse flap of the de Br=E9cy Tondo canvas appears =
the word=20
=93Felic=94 in an ornate, antique script, which research has identified =
with Felice=20
della Rovere, indisputably the most powerful woman in early sixteenth =
century=20
Rome. A natural daughter of Pope Julius II, she married into the Orsinis =
in 1506=20
and had two sons and two daughters; it was an established custom at that =
time=20
for artists to depict their powerful patrons as the Sacra Famiglia and =
in this=20
respect it would have been entirely acceptable to portray Felice della =
Rovere=20
and her infant son as the Madonna and Child of the tondo. Raphael, =
himself an=20
influential member of the Vatican Court from 1508, would undoubtedly =
have been=20
known to Felice della Rovere. In November 1520, seven months after =
Raphael=92s=20
death, Cardinal Bibbiena, the Vatican Treasurer, bequeathed to =
Raphael=92s friend=20
Baldassare Castiglione a Madonna by Raphael, with a description which is =
apt for=20
this tondo, a circular image on a square canvas. Bibbiena was also aware =
of the=20
personal affection and regard of Felice della Rovere and Castiglione for =
each=20
other. After the death of Castiglione, his own portrait by Raphael which =

belonged to him, came into the ownership of the Duke of Urbino together, =
it is=20
submitted, with other works such as the tondo, which he had held =
precious. At=20
the time of the Duke=92s death in 1631, the Vatican was acquiring such =
religious=20
works of art throughout Italy for transmission to Queen Henrietta Maria =
in=20
England. </P>
<P class=3D"">The de Br=E9cy Tondo also bears a personal monogram =
consistent with=20
that of Queen Henrietta Maria (1609=961669) on the reverse. She was =
Queen Consort=20
of King Charles I of England from 1625 to 1649, daughter of King Henry =
IV of=20
France and Queen Marie de Medici. Henrietta Maria was an avowed Catholic =
and=20
from 1632 to 1640 received gifts of works of art from Cardinal Barberini =
of the=20
Vatican to bolster the cause of catholicism in Britain. Research has =
predicated=20
that one of these paintings is the tondo, subject of this present study, =
and=20
that it was given in settlement of a debt by Queen Henrietta Maria to =
Sir=20
Richard Wynn (1588=961649) (or that alternatively it was given to him by =
the=20
Vatican for services rendered), her Receiver-General and Treasurer, who =
was=20
responsible for the accounts of her art collection. The painting =
subsequently=20
devolved to Mrs Violet Hope Fairbairn Wynne-Eyton (1892=961981) =
[historical=20
research propounds that the tondo passed from the ownership of Sir =
Richard Wynn,=20
who was a member of the influential Welsh aristocratic family, the Wynns =
of=20
Gwydir, into the celebrated art collection of his descendant Sir Watkin=20
Williams-Wynn, 4th Baronet (1749=961789), and thence ultimately to Mrs =
Violet Hope=20
Fairbairn Wynn-Eyton, who was related to both], from whose Estate it was =

acquired at auction in 1981 by George Lester Winward (1934=961997). The =
painting=20
has been transferred to the de Br=E9cy Trust, which was charitably =
instituted by=20
the late George Lester Winward as an educational resource for art =
appreciation.=20
</P></DIV>
<DIV class=3D""><A name=3DSec3></A>
<DIV class=3DHeading3>Previous Raman spectroscopic studies</DIV>
<P class=3D"">Raman spectroscopy and Raman microspectroscopy have a=20
well-established record in the literature for the identification of =
pigments in=20
ancient paintings [<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR1">1</A></CITE>=96<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR4">4</A></CITE>].=20
Generally, these studies have concentrated upon the characterisation of =
mineral=20
pigments, alone or in admixture, in historiated manuscripts [<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR5">5</A></CITE>=96<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR7">7</A></CITE>],=20
wall paintings [<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR8">8</A></CITE>=96<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR10">10</A></CITE>],=20
polychrome statuary [<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR11">11</A></CITE>,=20
<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR12">12</A></CITE>],=20
religious icons [<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR13">13</A></CITE>,=20
<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR14">14</A></CITE>]=20
and easel paintings [<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR15">15</A></CITE>,=20
<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR16">16</A></CITE>].=20
Raman spectroscopy using portable instrumentation has now been reported =
for the=20
analysis of artwork [<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR17">17</A></CITE>=96<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR19">19</A></CITE>],=20
and there are indeed several advantages in this approach; the taking of =
small=20
samples for multi-instrument analyses is also advocated as part of the=20
conservation strategy of art restoration. Hitherto, some important =
information=20
about the techniques of application of layers of pigments and of their=20
interaction with the substrate have been forthcoming from the =
examination of=20
detached micro-samples, which would not have normally been accessible =
from the=20
surface examination of an artwork alone. Here, the availability of =
selected=20
specimens from the de Br=E9cy tondo afforded the opportunity for =
possible Raman=20
spectroscopic examination. </P>
<P class=3D"">Although infrared spectroscopic and XRD techniques have =
been used=20
extensively for the examination of oil paintings [<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR2">2</A></CITE>],=20
Raman spectroscopy has relatively few reports in the literature in this =
respect;=20
a possible reason for this anomaly could be the presence of relatively =
large=20
amounts of organic components in the applied pigments themselves, in the =

preparation of the canvas and in the treatment of the surface paints =
with=20
varnishes. The deterioration of the latter often results in the =
formation of=20
highly fluorescent decomposition products in materials that already =
provide=20
significantly large fluorescent emission in the spectral background; =
materials=20
such as ambers, copals, gums and aromatic resins have all been reported =
in=20
contemporary Renaissance artists=92 manuals for the final application to =
oil=20
paintings [<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR20">20</A></CITE>,=20
<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR21">21</A></CITE>].=20
</P>
<P class=3D"">In addition, several artists were noted for their =
experimental=20
studies using organic pigments; in mediaeval and Renaissance periods, =
organic=20
dyes were obtained from plants such as lichens (e.g. lichen purple, =
litmus) and=20
changes in hue effected using acids and alkalis [<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR22">22</A></CITE>].=20
The poor temporal stability of some of these dyes is well recognised and =
it is a=20
challenge analytically to identify the original source materials; often, =
a=20
painter would use both organic dyes and inorganic minerals in an art =
composition=20
and their survivability can be compromised by environmental exposure and =

chemical reactions within and at the surface of the painting. Even =
mineral=20
pigments were not immune to deterioration [<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR23">23</A></CITE>,=20
<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR24">24</A></CITE>]=20
and in Roman times, for example, the admixture of cinnabar, mercury(II) =
sulfide=20
and lead white [basic lead(II) carbonate (hydrocerussite)]=97much =
admired for=20
their rich flesh tones in wall-paintings=97were reported to be unstable =
in the=20
presence of light, forming black lead(II) sulfide [<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR25">25</A></CITE>].=20
</P>
<P class=3D"">Three small samples of the de Br=E9cy Tondo were taken =
from a specific=20
blue-painted area of the painting and these samples were made available =
for=20
Raman spectroscopic analysis and characterisation in conjunction with =
other=20
analytical techniques. </P></DIV></DIV>
<DIV class=3D""><A name=3DSec4></A>
<HR>

<DIV class=3Dheading2>Experimental</DIV>
<DIV class=3D""><A name=3DSec5></A>
<DIV class=3DHeading3>Samples</DIV>
<P class=3D"">Three specimens designated 0802A, B and C, from the =
blue-painted=20
region of the Madonna and Child tondo shown in Fig.&nbsp;<A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#Fig1">1</A>=20
were taken from the edge of the painting at the junction with the =
circular gilt=20
frame and were supplied for Raman spectroscopic analysis by Henry Bland, =

Consultant Forensic Scientist to the de Br=E9cy Trust. The specimens =
consisted of=20
flakes removed by scalpel incision from an area under the lip of the =
circular=20
frame of the painting, each flake being approximately =
1&nbsp;mm<SUP>2</SUP> in=20
area and containing attached substrate; no further taking of samples was =

permitted. It is recognised that some unspecified earlier conservation =
had been=20
effected in 2000. </P></DIV>
<DIV class=3D""><A name=3DSec6></A>
<DIV class=3DHeading3>Raman spectroscopy</DIV>
<P class=3D"">Raman spectra were obtained using a Renishaw <I>InVia</I> =
confocal=20
Raman microscope operating using 785&nbsp;nm excitation, a laser power =
at the=20
sample of 0.3&nbsp;mW, with lens objectives of 20=D7and 50=D7 =
magnification, giving=20
spectral footprints of about 5=9610&nbsp;microns. Each specimen was =
examined for=20
particulate material and matrix at several points and the Raman bands =
were=20
compared with standard spectra in databases [<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR26">26</A></CITE>,=20
<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR27">27</A></CITE>].=20
Up to 10 spectral scans were accumulated with a spectral resolution of=20
2&nbsp;cm<SUP>&#8722;1</SUP>. </P>
<P class=3D"">FT-Raman spectra were also recorded from the same samples =
using a=20
Bruker IFS 66/FRA 106 instrument in the macroscopic mode of operation =
with=20
Nd<SUP>3+</SUP>/YAG laser excitation at 1,064&nbsp;nm in the =
near-infrared=20
region and a laser power of about 50&nbsp;mW. Spectral data were =
accumulated=20
over some 2,000 scans at 4&nbsp;cm<SUP>&#8722;1</SUP> spectral =
resolution and a=20
wavenumber range of 3,400=96100&nbsp;cm<SUP>&#8722;1</SUP>. The spectral =
footprint was=20
approximately 100&nbsp;microns. The scan time of each sample point was=20
approximately 30&nbsp;min and several replicates were obtained for each=20
specimen. Regions of high fluorescence emission noted with 785&nbsp;nm=20
excitation were examined specifically with 1,064&nbsp;nm excitation for =
the=20
presence of organic degraded materials. </P></DIV></DIV>
<DIV class=3D""><A name=3DSec7></A>
<HR>

<DIV class=3Dheading2>Results and discussion</DIV>
<DIV class=3DPara>
<DIV class=3D"">Specimen 0802A is a predominantly white rather powdery =
specimen,=20
which showed the Raman band signatures of lead white [basic lead(II) =
carbonate=20
(hydrocerussite), Pb(OH)<SUB>2</SUB>.2PbCO<SUB>3</SUB>], with a =
characteristic=20
band at 1,050&nbsp;cm<SUP>&#8722;1</SUP> and amorphous carbon with broad =
bands centred=20
at approximately 1,590 and 1,320&nbsp;cm<SUP>&#8722;1</SUP> =
corresponding to the G and=20
D modes of sp<SUP>2</SUP> and sp<SUP>3</SUP> hybridised carbon, =
respectively=20
(Fig.&nbsp;<A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#Fig3">3</A>).=20
Lead white was a popular mineral pigment during the Renaissance because =
it had a=20
superior covering power compared with other possible white pigments, =
such as=20
calcite, gypsum and barites; it was also used as a siccative. Despite =
the=20
adoption of the latter as a white pigment in the early nineteenth =
century=20
because of its low toxicity compared with the lead-based analogue =
[<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR28">28</A></CITE>],=20
hydrocerussite was still favoured for its covering power. The presence =
of carbon=20
particles in the predominantly white matrix can be ascribed to a mansion =
house=20
fire at Wynnstay, Ruabon, in 1858 and to the subsequent location of the =
painting=20
for much time above an open coal fire in the principal bedroom of =
another=20
mansion house, Leeswood Hall, home of Mrs Violet Hope Fairbairn =
Wynne-Eyton.=20
Other weaker Raman features are assignable to an aliphatic, waxy, =
organic=20
compound with bands at 1,437, 1,100, 1,000 and =
935&nbsp;cm<SUP>&#8722;1</SUP>; very=20
weak, broad features are also visible near =
2,900&nbsp;cm<SUP>&#8722;1</SUP> in the=20
region of C=96H stretching. It is possible that this organic component =
is a resin=20
or wax which was used by the artist as a medium, but also that it could =
arise=20
from later restoration, where a paraffin wax was used to protect the art =
work.=20
This will be discussed later. No evidence was observed for a coloured=20
particulate component in this specimen, and we conclude from the Raman=20
spectroscopic analysis that the specimen is thus probably mainly that of =
the=20
substrate to the painting.=20
<DIV class=3DFigure><A name=3DFig3></A><IMG=20
alt=3DMediaObjects/216_2006_646_Fig3_HTML.gif=20
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/216_2006_646_Fig3_HTML.gif"></DIV>
<DIV class=3DCapt><SPAN class=3DCaptNr>Fig.&nbsp;3&nbsp;</SPAN>The =
near-infrared=20
Raman spectrum of specimen 0802A, a white powder, excited at =
785&nbsp;nm, 10=20
scans, wavenumber range 100=961,800&nbsp;cm<SUP>&#8722;1</SUP>. The =
signatures of basic=20
lead carbonate (hydrocerussite) at 1,050&nbsp;cm<SUP>&#8722;1</SUP> and =
carbon at=20
1,590 and 1,320&nbsp;cm<SUP>&#8722;1</SUP> are visible </DIV>
<HR>
</DIV></DIV>
<DIV class=3DPara>
<DIV class=3D"">In contrast to specimen 0802A, specimen 0802B presented =
a very=20
diverse and rich source of Raman spectra dependent on the spectroscopic =
sampling=20
position. Strong signatures are provided for the yellow lead(II) oxide,=20
massicot, with Raman bands at 142, 287 and =
380&nbsp;cm<SUP>&#8722;1</SUP>=20
(Fig.&nbsp;<A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#Fig4">4</A>).=20
Other regions of this specimen gave bands at 2,930 and=20
2,848&nbsp;cm<SUP>&#8722;1</SUP>, with others near 1,440 and=20
1,360&nbsp;cm<SUP>&#8722;1</SUP>, characteristic of C=96H stretching and =
bending modes=20
of an aliphatic organic compound. Lead white (hydrocerussite) and carbon =
are=20
also seen (Fig.&nbsp;<A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#Fig5">5</A>)=20
with bands at 1,050, 1,590 and 1,320&nbsp;cm<SUP>&#8722;1</SUP>, as =
noted in specimen=20
0802 A. The very distinctive Raman spectrum obtained in Fig.&nbsp;<A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#Fig6">6</A>=20
is that of an aliphatic organic compound, detailed spectroscopic =
assignments for=20
which will be discussed later.=20
<DIV class=3DFigure><A name=3DFig4></A><IMG=20
alt=3DMediaObjects/216_2006_646_Fig4_HTML.gif=20
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/216_2006_646_Fig4_HTML.gif"></DIV>
<DIV class=3DCapt><SPAN class=3DCaptNr>Fig.&nbsp;4&nbsp;</SPAN>The =
near-infrared=20
Raman spectrum of a yellow particle in specimen 0802B, excited at =
1,064&nbsp;nm,=20
1,000 scans, wavenumber range 100=96700&nbsp;cm<SUP>&#8722;1</SUP>. The =
spectral=20
signatures of lead(II) oxide (massicot) are observed at 142, 287 and=20
385&nbsp;cm<SUP>&#8722;1</SUP> </DIV>
<HR>

<DIV class=3DFigure><A name=3DFig5></A><IMG=20
alt=3DMediaObjects/216_2006_646_Fig5_HTML.gif=20
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/216_2006_646_Fig5_HTML.gif"></DIV>
<DIV class=3DCapt><SPAN class=3DCaptNr>Fig.&nbsp;5&nbsp;</SPAN>The =
near-infrared=20
Raman spectrum of specimen 0802B matrix, excited at 785&nbsp;nm, 10 =
scans,=20
wavenumber range 100=963,200&nbsp;cm<SUP>&#8722;1</SUP>, showing the =
characteristic=20
spectral signatures of hydrocerussite and carbon </DIV>
<HR>

<DIV class=3DFigure><A name=3DFig6></A><IMG=20
alt=3DMediaObjects/216_2006_646_Fig6_HTML.gif=20
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/216_2006_646_Fig6_HTML.gif"></DIV>
<DIV class=3DCapt><SPAN class=3DCaptNr>Fig.&nbsp;6&nbsp;</SPAN>The =
near-infrared=20
Raman spectrum of specimen 0802 B matrix, excited at 1,064&nbsp;nm, =
1,000 scans,=20
wavenumber range 100=963,200&nbsp;cm<SUP>&#8722;1</SUP>. This spectrum =
is characteristic=20
of an organic compound with Raman bands at 2,925 and =
2,848&nbsp;cm<SUP>&#8722;1</SUP>=20
in the C=96H stretching region and other features at 1,443, 1,358, =
1,341, 1,293,=20
1,211, 1,049, 921, 844, 770, 756, 525, 393, 286 and =
220&nbsp;cm<SUP>&#8722;1</SUP>,=20
which are attributable to a gum or wax. Weaker features at 1,660 and=20
1,590&nbsp;cm<SUP>&#8722;1</SUP> can be assigned to either aromatic ring =
vibrations of=20
a quinone or to a proteinaceous component </DIV>
<HR>
</DIV></DIV>
<DIV class=3DPara>
<DIV class=3D"">The most significant features in the Raman spectra of =
specimen=20
0802C were the bands grouped near 2,100&nbsp;cm<SUP>&#8722;1</SUP> =
obtained from=20
regions containing blue particles (Fig.&nbsp;<A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#Fig7">7</A>)=20
which can be ascribed to the hexacyanoferrate ions in Prussian blue, a =
synthetic=20
pigment [<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR20">20</A></CITE>]=20
first manufactured in 1704. In the surrounding matrix, very strong Raman =
bands=20
arise from an organic component (Fig.&nbsp;<A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#Fig8">8</A>)=20
in which there is also a trace of Prussian blue pigment, possibly =
indicative of=20
a pigment binding role for this organic compound. Lead white is again =
noted in=20
other regions in admixture with Prussian blue, which can be attributed =
to the=20
provision of a lighter blue shade. Although it might seem reasonable to =
question=20
the authenticity of a sixteenth century painting which contains the =
synthetic=20
early eighteenth century Prussian blue pigment, unrecorded restorations =
carried=20
out in the last 300&nbsp;years could reasonably explain its presence =
here; we=20
are supported in this suggestion by the presence of only discrete =
particles of=20
Prussian blue in the blue-coloured region which otherwise resembles a =
coloured=20
=93wash=94.=20
<DIV class=3DFigure><A name=3DFig7></A><IMG=20
alt=3DMediaObjects/216_2006_646_Fig7_HTML.gif=20
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/216_2006_646_Fig7_HTML.gif"></DIV>
<DIV class=3DCapt><SPAN class=3DCaptNr>Fig.&nbsp;7&nbsp;</SPAN>The =
near-infrared=20
Raman spectrum of a blue particle in specimen 0802C, excited at =
785&nbsp;nm, 10=20
scans, wavenumber range 3,200=962,000&nbsp;cm<SUP>&#8722;1</SUP>, =
showing the=20
characteristic Raman features of Prussian blue near =
2,100&nbsp;cm<SUP>&#8722;1</SUP>.=20
Also evident in this spectrum are the C=96H stretching modes of an =
organic=20
component at 2,920, 2,866 and 2,849&nbsp;cm<SUP>&#8722;1</SUP> </DIV>
<HR>

<DIV class=3DFigure><A name=3DFig8></A><IMG=20
alt=3DMediaObjects/216_2006_646_Fig8_HTML.gif=20
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/216_2006_646_Fig8_HTML.gif"></DIV>
<DIV class=3DCapt><SPAN class=3DCaptNr>Fig.&nbsp;8&nbsp;</SPAN>The =
near-infrared=20
Raman spectrum of the specimen 0802C matrix, excited at 1,064&nbsp;nm, =
1,000=20
scans, wavenumber range 100=963,200&nbsp;cm<SUP>&#8722;1</SUP>, showing =
the presence of=20
an organic component with bands at 2,920, 2,866, =
2,849&nbsp;cm<SUP>&#8722;1</SUP>.=20
There is also a trace of Prussian blue pigment in this spectrum </DIV>
<HR>
</DIV></DIV>
<DIV class=3D""><A name=3DSec8></A>
<DIV class=3DHeading3>Analysis of organic component(s)</DIV>
<P class=3D"">Technical analyses of the tondo canvas and its pigments =
have been=20
carried out in eight laboratories and have addressed diverse questions =
relating=20
to the construction of the painting. Although stereomicroscopic studies =
have=20
revealed the presence of red madder lake, yellow ochre, burnt sienna and =
lead=20
white in a wider sampling range than was available for the Raman studies =

reported here, no pigment particles could be identified in the samples =
from=20
seven diverse blue-coloured regions of the painting [<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR29">29</A></CITE>].=20
EDAXS measurements on the blue paint specimens confirmed that there were =
no=20
metallic elements present apart from lead, which was presumed to have =
originated=20
from the lead white substrate [<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR29">29</A></CITE>]=20
The blue colour here was ascribed to an organic vegetable-based dye =
[<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR30">30</A></CITE>].=20
The mediaeval dye, turnsole (folium), is considered a candidate for the =
rich=20
blue colour used in the robes of the Madonna. Turnsole has a similar =
property to=20
litmus in that it changes colour with acid or alkaline pH. A chemical =
test=20
carried out on the blue paint from the tondo in another laboratory =
[<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR29">29</A></CITE>]=20
demonstrated a change in colour from blue to reddish-yellow on being =
acidified=20
with acetic acid [<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR31">31</A></CITE>,=20
<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR32">32</A></CITE>].=20
This is a very interesting discovery as turnsole has not been reported =
hitherto=20
in an easel painting but was well-documented in mediaeval manuscript=20
illumination [<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR33">33</A></CITE>=96<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR35">35</A></CITE>].=20
Supporting technical evidence to date confirms [<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR30">30</A></CITE>]=20
that turnsole is a likely possibility for the organic blue colour used =
in this=20
painting. </P>
<P class=3D"">It will be apparent that the Raman spectra of the organic =
components=20
found in the three specimens are different; the specimen 0802 A is =
essentially=20
colourless and other Raman bands are indicative of perhaps the lead =
white ground=20
pigment and carbon only; this evidence suggests that the organic =
component could=20
be a resin, wax or binder that may have been used in the pigment =
preparation=20
prior to its application to the canvas. Some possibilities are the =
natural=20
resins and waxes such as amber, dragon=92s blood, ouricoury, candellila, =

ozokerite, seed oils such as walnut, poppy and linseed oils, and gums or =
glues=20
such as tragacanth and gum arabic. The Raman spectra of these materials =
have=20
been recorded in our biomaterials database [<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR36">36</A></CITE>=96<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR38">38</A></CITE>]=20
and can be excluded from consideration in the current exercise because =
the major=20
vibrational spectroscopic features do not match with the spectra of this =

specimen. However, one possibility remains in starch, which has some =
component=20
features which are very close to those which are recorded here; we can =
therefore=20
suggest that starch is possibly present in the tondo substrate as a =
binder for=20
the pigment application. </P>
<DIV class=3DPara>
<DIV class=3D"">Similarly, we can exclude the presence of modern =
paraffin waxes=20
used by conservators, such as cosmolloid, which subsequently was =
confirmed as=20
having been used in a preliminary restoration on the tondo in 2000. It =
can be=20
seen that the Raman spectrum of cosmolloid wax (Fig.&nbsp;<A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#Fig9">9</A>)=20
is very different from the features presented in the specimens from the=20
painting.=20
<DIV class=3DFigure><A name=3DFig9></A><IMG=20
alt=3DMediaObjects/216_2006_646_Fig9_HTML.gif=20
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/216_2006_646_Fig9_HTML.gif"></DIV>
<DIV class=3DCapt><SPAN class=3DCaptNr>Fig.&nbsp;9&nbsp;</SPAN>The =
near-infrared=20
Raman spectrum of cosmolloid wax which has been recorded as being used =
in a=20
recent restoration of parts of the tondo painting; excitation at =
1,064&nbsp;nm,=20
1,000 scans, wavenumber range 400=963,600&nbsp;cm<SUP>&#8722;1</SUP>. =
Major features are=20
at 2,881, 2,847, 2,722, 1,461, 1,440, 1,417, 1,369, 1,295, 1,170, 1,131, =
1,062=20
and 889&nbsp;cm<SUP>&#8722;1</SUP> </DIV>
<HR>
</DIV></DIV>
<P class=3D"">Specimen 0802B provided the most varied combination of =
mineral=20
pigments in the current analysis; here, the presence of massicot, =
probably=20
present as an impurity from the neighbouring yellow region in the =
predominantly=20
blue-coloured specimen, is supportive evidence for a Renaissance date =
for the=20
tondo as well as being an affirmed favourite of Raphael, as this pigment =
was=20
effectively replaced by alternative yellow pigments post-1700. In this =
specimen=20
the organic component is different from that of specimen 0802A. </P>
<P class=3D"">Specimen 0802C provided the strongest and also the =
spectroscopically=20
richest organic signature in the current analysis; also, the =
identification of=20
discrete particles of the synthetic Prussian blue pigment in this =
specimen,=20
intimately associated with the organic component in the blue colour, is =
strongly=20
suggestive that this sample could have been taken from a =
post-Renaissance=20
restoration which has not been recorded hitherto. Again, the signatures =
of this=20
organic component are sensibly different from the others in the limited =
batch of=20
samples presented for analysis here, but the signatures do not match =
those of=20
gums and waxes in our database. It is hence possible that this spectrum =
is that=20
of an organic-based dye such as turnsole. </P></DIV>
<DIV class=3D""><A name=3DSec9></A>
<DIV class=3DHeading3>Turnsole</DIV>
<P class=3D"">The violet flowers of <I>Heliotropium</I> <I>tricoccum</I> =
L., the=20
turnsole plant, turn towards the sun and give the plant its name; the =
turnsole=20
dye extracted from the turnsole (folium) plant was much admired in =
mediaeval=20
times for the colours that could be adopted ranging from red to blue in =
acid to=20
alkaline solutions, with a particularly vivid purple in neutral =
solution.=20
Unfortunately, it has not been possible to secure a sample of natural =
turnsole=20
for comparative studies in this work and the material has never been=20
synthesised. Indeed, there is some controversy about its chemical =
composition=20
[<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR34">34</A></CITE>]=20
which has been variously described generically as an anthocyanin and =
azolitmin.=20
</P>
<DIV class=3DPara>
<DIV class=3D"">The colour properties of turnsole closely resemble those =
of the=20
lichen purples (orchil) that are derived from <I>Ochrolecia</I> and=20
<I>Lecanora</I> lichens which are both rich in depside precursors =
[<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR22">22</A></CITE>,=20
<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR39">39</A></CITE>,=20
<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR40">40</A></CITE>]=20
of orcein, a purple dye which is a complex mixture of phenazones, the =
principal=20
components being <I>cis</I> and <I>trans</I> isomers of <I>alpha-, =
beta-</I> and=20
<I>gamma</I>-hydroxyorcein; an example of these compounds is given in =
the=20
molecular structure shown in Fig.&nbsp;<A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#Fig10">10</A>,=20
deduced from the classic and extensive chemical characterisation =
experiments of=20
Musso et al. [<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR41">41</A></CITE>=96<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR50">50</A></CITE>].=20
However, it is still not clear that the chemistry of turnsole and orcein =
are=20
similar [<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR51">51</A></CITE>].=20

<DIV class=3DFigure><A name=3DFig10></A><IMG=20
alt=3DMediaObjects/216_2006_646_Fig10_HTML.gif=20
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/216_2006_646_Fig10_HTML.gif"></DIV>
<DIV class=3DCapt><SPAN class=3DCaptNr>Fig.&nbsp;10&nbsp;</SPAN>The =
molecular=20
structures of a major chemical component of the mediaeval orchil lichen =
purple=20
dye, orcein; here,<I> alpha</I>-aminoorcein has R =3D NH<SUB>2</SUB> =
and<I>=20
alpha</I>-hydroxyorcein has R =3D OH </DIV>
<HR>
</DIV></DIV>
<P class=3D"">We have obtained a specimen of orcein (Sigma-Aldrich) and =
also=20
azolitmin (BDH), a related reddish-purple lichen extract, and attempted =
to=20
obtain the Raman spectra. Both fluoresced extremely strongly in the=20
near-infrared at 785 and at 1,064&nbsp;nm and no discernable vibrational =
bands=20
could be noted; this negative result confirms that the Raman bands noted =
for the=20
organic component in the specimen 0802B in particular cannot therefore =
be=20
attributed to a orcein vegetable dye. The bands in the Raman spectrum =
from=20
specimen 0802B are also clearly aliphatic in origin, whereas those =
belonging to=20
orcein and its derivatives would be expected to have significant =
contributions=20
from the vibrational modes of fused aromatic rings, phenols and =
semiquinones.=20
Also, in earlier studies [<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR52">52</A></CITE>,=20
<CITE><A=20
href=3D"http://www.springerlink.com/content/7186545526jq4455/fulltext.spt=
l#CR53">53</A></CITE>]=20
from our laboratories we have reported successfully the Raman spectra of =

depsides such as erythrin, lecanoric acid and other lichen colourants =
such as=20
parietin and atranorin which contain several of the features expected =
for the=20
orcein molecular components, such as aromatic quinonoids, fused aromatic =
rings=20
and aromatic methyl phenols. It is therefore deduced from this study =
that the=20
blue colour of the de Br=E9cy Tondo painting is not derived from orchil, =
which=20
still leaves open the attribution to turnsole, for which there is much=20
circumstantial art historical evidence. </P>
<P class=3D"">In summary, therefore, we can affirm that the Raman =
spectra of the=20
samples studied here indicate at least two distinct organic components =
in the=20
specimens: a binder for the substrate, probably starch-based and a =
resin/wax=20
additive or siccative which possibly is associated with a =
post-Renaissance=20
restoration of a region of the painting which also incorporated a =
synthetic blue=20
replacement pigment. There is no evidence from our studies of these =
limited=20
samples that the organic Raman spectroscopic signatures from a =
non-particulate=20
blue region could be attributed to an organic dye derived from orchil, =
whilst=20
still leaving open the possibility of attribution to turnsole. =
</P></DIV></DIV>
<DIV class=3D""><A name=3DSec10></A>
<HR>

<DIV class=3Dheading2>Conclusions</DIV>
<P class=3D"">The Raman spectral analysis of the three samples taken =
from the de=20
Br=E9cy Tondo indicate a pigment and substrate which are consistent with =
an=20
assignment of the painting to the Renaissance period. The presence of =
the=20
synthetic pigment Prussian blue is attributed to a post-Renaissance =
restoration.=20
No evidence is seen in these specimens for the presence of cosmolloid =
paraffin=20
wax from a twentieth century conservation, but the Raman signatures of =
organic=20
components in two of the samples are consistent with a Renaissance =
starch-based=20
binder medium and a siccative. Whilst the presence of the lichen purple =
dye,=20
orchil, has been shown to be unlikely, the presence of turnsole cannot =
be=20
excluded on the analytical evidence of the current work. </P></DIV>
<DIV class=3DAcknowledgments><SPAN=20
class=3DAcknowledgmentsHeading>Acknowledgement&nbsp;&nbsp;</SPAN><SPAN =
class=3D"">We=20
thank the de Br=E9cy Trust for making available the three samples from =
the tondo=20
for Raman spectroscopic analysis and the results from other analytical=20
laboratories relating to the elemental composition of the pigments and=20
substrate.</SPAN></DIV>
<P></P>
<HR>

<H2><A name=3DBib1></A>References </H2>
<TABLE>
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    <TD><A name=3DCR1></A>Smith GD, Clark RJH (2004) J Arch Sci=20
      31:1137=961160<BR><A =
href=3D"http://dx.doi.org/10.1016/j.jas.2004.02.008"=20
      target=3D_blank><IMG height=3D20 alt=3DCrossRef=20
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src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/crossref_link.gif"=20
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    <TD>2.</TD>
    <TD><A name=3DCR2></A>Ciliberto E (2000) In: Spoto G (ed) Modern =
analytical=20
      methods in art and archaeology. Wiley, New York </TD></TR>
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    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>3.</TD>
    <TD><A name=3DCR3></A>Edwards HGM (1999) IR and Raman spectroscopy =
of art.=20
      In: Lindon JC, Tranter GE, Holmes JL (eds) Encyclopedia of =
spectrometry=20
      and spectroscopy. Academic Press, London, pp 2=9617 </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>4.</TD>
    <TD><A name=3DCR4></A>Edwards HGM, Chalmers JM (eds) (2005) Raman=20
      spectroscopy in archaeology and art history. Royal Society of =
Chemistry,=20
      Cambridge </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>5.</TD>
    <TD><A name=3DCR5></A>Clark RJH (1995) J Mol Struct =
347:417=96428<BR><A=20
      =
href=3D"http://chemport.cas.org/cgi-bin/sdcgi?APP=3Dftslink&amp;action=3D=
reflink&amp;origin=3Dspringer&amp;version=3D1.0&amp;coi=3D1%3ACAS%3A528%3=
ADyaK2MXlsFCqu7s%253D&amp;md5=3Dda4eb1ca4c43debee71b0939570d7716"=20
      target=3D_blank><IMG height=3D20 alt=3DChemPort=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/chemport_link.gif"=20
      width=3D65 border=3D0></A> <A=20
      href=3D"http://dx.doi.org/10.1016/0022-2860(95)08564-C" =
target=3D_blank><IMG=20
      height=3D20 alt=3DCrossRef=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/crossref_link.gif"=20
      width=3D65 border=3D0></A> </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>6.</TD>
    <TD><A name=3DCR6></A>Brown KL, Clark RJH (2004) J Raman Spectrosc=20
      35:181=96189<BR><A=20
      =
href=3D"http://chemport.cas.org/cgi-bin/sdcgi?APP=3Dftslink&amp;action=3D=
reflink&amp;origin=3Dspringer&amp;version=3D1.0&amp;coi=3D1%3ACAS%3A528%3=
ADC%252BD2cXjtFKgtro%253D&amp;md5=3Dc7a68c646020fd56bdd20dc81f950ca5"=20
      target=3D_blank><IMG height=3D20 alt=3DChemPort=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/chemport_link.gif"=20
      width=3D65 border=3D0></A> <A =
href=3D"http://dx.doi.org/10.1002/jrs.1127"=20
      target=3D_blank><IMG height=3D20 alt=3DCrossRef=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/crossref_link.gif"=20
      width=3D65 border=3D0></A> </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>7.</TD>
    <TD><A name=3DCR7></A>Brown KL, Clark RJH (2004) J Raman Spectrosc=20
      35:217=96223<BR><A=20
      =
href=3D"http://chemport.cas.org/cgi-bin/sdcgi?APP=3Dftslink&amp;action=3D=
reflink&amp;origin=3Dspringer&amp;version=3D1.0&amp;coi=3D1%3ACAS%3A528%3=
ADC%252BD2cXjtFKgtrY%253D&amp;md5=3D75260cbdb891a02c3e26c03079b311a0"=20
      target=3D_blank><IMG height=3D20 alt=3DChemPort=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/chemport_link.gif"=20
      width=3D65 border=3D0></A> <A =
href=3D"http://dx.doi.org/10.1002/jrs.1135"=20
      target=3D_blank><IMG height=3D20 alt=3DCrossRef=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/crossref_link.gif"=20
      width=3D65 border=3D0></A> </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>8.</TD>
    <TD><A name=3DCR8></A>Bikiaris D, Sister Daniilia, Sotiropoulu S, =
Katsimbiri=20
      O, Pavlidou E, Moutsatsou AP, Chryssoulakis Y (1999) Spectrochim =
Acta Part=20
      A 56:3=9618 </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>9.</TD>
    <TD><A name=3DCR9></A>Edwards HGM (2002) Spectroscopy =
17:16=9640<BR><A=20
      =
href=3D"http://chemport.cas.org/cgi-bin/sdcgi?APP=3Dftslink&amp;action=3D=
reflink&amp;origin=3Dspringer&amp;version=3D1.0&amp;coi=3D1%3ACAS%3A528%3=
ADC%252BD38XitFOqs74%253D&amp;md5=3Daa7e877ae492bed55cb6bcb5bb574298"=20
      target=3D_blank><IMG height=3D20 alt=3DChemPort=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/chemport_link.gif"=20
      width=3D65 border=3D0></A> </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>10.</TD>
    <TD><A name=3DCR10></A>Smith DC, Barbet A (1999) J Raman Spectrosc=20
      30:319=96324<BR><A=20
      =
href=3D"http://chemport.cas.org/cgi-bin/sdcgi?APP=3Dftslink&amp;action=3D=
reflink&amp;origin=3Dspringer&amp;version=3D1.0&amp;coi=3D1%3ACAS%3A528%3=
ADyaK1MXjsVylsb8%253D&amp;md5=3Daef34644790d057be3bc4f7c1e637cfd"=20
      target=3D_blank><IMG height=3D20 alt=3DChemPort=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/chemport_link.gif"=20
      width=3D65 border=3D0></A> <A=20
      =
href=3D"http://dx.doi.org/10.1002/(SICI)1097-4555(199904)30:4%3C319::AID-=
JRS380%3E3.0.CO;2-X"=20
      target=3D_blank><IMG height=3D20 alt=3DCrossRef=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/crossref_link.gif"=20
      width=3D65 border=3D0></A> </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>11.</TD>
    <TD><A name=3DCR11></A>Edwards HGM, Farwell DW, Newton EM, Rull =
Perez F,=20
      Jorge Villar SE (2000) J Raman Spectrosc 31:407=96413<BR><A=20
      =
href=3D"http://chemport.cas.org/cgi-bin/sdcgi?APP=3Dftslink&amp;action=3D=
reflink&amp;origin=3Dspringer&amp;version=3D1.0&amp;coi=3D1%3ACAS%3A528%3=
ADC%252BD3cXksVOgs74%253D&amp;md5=3Db0b8b5be8e85c1bd03cf8774d8b8fd08"=20
      target=3D_blank><IMG height=3D20 alt=3DChemPort=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/chemport_link.gif"=20
      width=3D65 border=3D0></A> <A=20
      =
href=3D"http://dx.doi.org/10.1002/1097-4555(200005)31:5%3C407::AID-JRS530=
%3E3.0.CO;2-Y"=20
      target=3D_blank><IMG height=3D20 alt=3DCrossRef=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/crossref_link.gif"=20
      width=3D65 border=3D0></A> </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>12.</TD>
    <TD><A name=3DCR12></A>Edwards HGM, Dixon EL, Scowen IJ, Rull Perez =
F (2003)=20
      Spectrochim Acta Part A 59:2291=962299<BR><A=20
      href=3D"http://dx.doi.org/10.1016/S1386-1425(03)00072-6" =
target=3D_blank><IMG=20
      height=3D20 alt=3DCrossRef=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/crossref_link.gif"=20
      width=3D65 border=3D0></A> </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>13.</TD>
    <TD><A name=3DCR13></A>Sister Daniilia, Bikiaris D, Burgio L, Gavala =
P,=20
      Clark RJH, Chryssoulakis Y (2002) J Raman Spectrosc =
33:807=96814<BR><A=20
      href=3D"http://dx.doi.org/10.1002/jrs.907" target=3D_blank><IMG =
height=3D20=20
      alt=3DCrossRef=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/crossref_link.gif"=20
      width=3D65 border=3D0></A> </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>14.</TD>
    <TD><A name=3DCR14></A>Sister Daniilia, Sotiropolou S, Bikiaris D, =
Salpistis=20
      CH, Karagiannis G, Chryssoulakis Y, Price BA, Carlson JH (2000) J =
Cultural=20
      Heritage 1:91=9699<BR><A=20
      href=3D"http://dx.doi.org/10.1016/S1296-2074(00)00164-3" =
target=3D_blank><IMG=20
      height=3D20 alt=3DCrossRef=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/crossref_link.gif"=20
      width=3D65 border=3D0></A> </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>15.</TD>
    <TD><A name=3DCR15></A>Vandenabeele P, Verpoort F, Moens L (2001) J =
Raman=20
      Spectrosc 32:263=96269<BR><A=20
      =
href=3D"http://chemport.cas.org/cgi-bin/sdcgi?APP=3Dftslink&amp;action=3D=
reflink&amp;origin=3Dspringer&amp;version=3D1.0&amp;coi=3D1%3ACAS%3A528%3=
ADC%252BD3MXjsVentbc%253D&amp;md5=3De43b85cfd46a671b968f9cd86e12f1e9"=20
      target=3D_blank><IMG height=3D20 alt=3DChemPort=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/chemport_link.gif"=20
      width=3D65 border=3D0></A> <A =
href=3D"http://dx.doi.org/10.1002/jrs.691"=20
      target=3D_blank><IMG height=3D20 alt=3DCrossRef=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/crossref_link.gif"=20
      width=3D65 border=3D0></A> </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>16.</TD>
    <TD><A name=3DCR16></A>Vandenabeele P, Weis TL, Grant ER, Moens L =
(2001)=20
      Anal Bioanal Chem 379:137=96142<BR><A=20
      href=3D"http://dx.doi.org/10.1007/s00216-004-2551-z" =
target=3D_blank><IMG=20
      height=3D20 alt=3DSpringerLink=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/springer_link.gif"=20
      width=3D108 border=3D0></A> </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>17.</TD>
    <TD><A name=3DCR17></A>Trentelman K, Havlik C (2005) Proc 6th =
Infrared and=20
      Raman Users Group Conference (IRUG 6), Florence Picollo M (ed) =
Istituto di=20
      Fisica Applicada =93Nello Carrara=94, IFAC-CNR, Florence, Italy, =
pp 94=96100=20
  </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>18.</TD>
    <TD><A name=3DCR18></A>Smith DC (1999) Mineralogical Soc Bull =
25:3=968 </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>19.</TD>
    <TD><A name=3DCR19></A>Smith DC (2005) Jewellery and precious =
stones. In:=20
      Edwards HGM, Chalmers JM (eds) Raman spectroscopy in archaeology =
and art=20
      history, Chap 21. Royal Society of Chemistry, Cambridge, pp =
335=96378 </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>20.</TD>
    <TD><A name=3DCR20></A>Gettens RJ, Stout GL (1966) Painting =
materials: a=20
      short encyclopaedia. Dover, New York </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>21.</TD>
    <TD><A name=3DCR21></A>Wright MH, Townsen JH (eds) (1995) Resins: =
ancient=20
      and modern. Scottish Soc Conservation and Restoration, Edinburgh =
</TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>22.</TD>
    <TD><A name=3DCR22></A>Kok A (1966) Lichenologist 3:248=96272 =
</TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>23.</TD>
    <TD><A name=3DCR23></A>Vitruvius, De Architectura, trans Granger F =
(1934)=20
      Harvard University Press, London, William Heinemann and Cambridge, =
Mass=20
  </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>24.</TD>
    <TD><A name=3DCR24></A>Pliny the Elder, Naturalis Historiae, trans =
Rackham H=20
      (1938=961984) Harvard University Press, London, William Heinemann =
and=20
      Cambridge, Mass </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>25.</TD>
    <TD><A name=3DCR25></A>Smith GD, Clark RJH (2002) J Cultural =
Heritage=20
      3:101=96105<BR><A =
href=3D"http://dx.doi.org/10.1016/S1296-2074(02)01173-1"=20
      target=3D_blank><IMG height=3D20 alt=3DCrossRef=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/crossref_link.gif"=20
      width=3D65 border=3D0></A> </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>26.</TD>
    <TD><A name=3DCR26></A>Bell IM, Clark RJH, Gibbs PJ (1997) =
Spectrochim Acta=20
      Part A 53:2159=962179<BR><A=20
      href=3D"http://dx.doi.org/10.1016/S1386-1425(97)00140-6" =
target=3D_blank><IMG=20
      height=3D20 alt=3DCrossRef=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/crossref_link.gif"=20
      width=3D65 border=3D0></A> </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
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    <TD>27.</TD>
    <TD><A name=3DCR27></A>Bouchard M, Smith DC (2005) Database of 74 =
Raman=20
      spectra of standard minerals of relevance to metal corrosion, =
stained=20
      glass or prehistoric rock art. In: Edwards HGM, Chalmers JM (eds) =
Raman=20
      spectroscopy in archaeology and art history, Chap 25. Royal =
Society of=20
      Chemistry, Cambridge, pp 429=96461 </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>28.</TD>
    <TD><A name=3DCR28></A>Feller RL (1986) Barium sulfate=97natural and =

      synthetic. In: Artists=92 pigments: a handbook of their history =
and=20
      characteristics, vol 1. Oxford University Press, New York, pp =
47=9664;=20
      Gettens RJ, Kuhn H, Chase WT (1997) Lead white. In: Roy A (ed), =
ibid, vol=20
      2. National Gallery of Art, Washington/Oxford University Press, pp =
67=9682=20
    </TD></TR>
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    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>29.</TD>
    <TD><A name=3DCR29></A>Bland H, private communication </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>30.</TD>
    <TD><A name=3DCR30></A>Wouters J, private communication </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
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    <TD>31.</TD>
    <TD><A name=3DCR31></A>Issa RM, Abu El-Waffa SM (1984) J Chinese =
Chem Soc=20
      31:41=9648<BR><A=20
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href=3D"http://chemport.cas.org/cgi-bin/sdcgi?APP=3Dftslink&amp;action=3D=
reflink&amp;origin=3Dspringer&amp;version=3D1.0&amp;coi=3D1%3ACAS%3A528%3=
ADyaL2cXksFCgu7s%253D&amp;md5=3D85b3ec7afca2d528caace38112ff6a74"=20
      target=3D_blank><IMG height=3D20 alt=3DChemPort=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/chemport_link.gif"=20
      width=3D65 border=3D0></A> </TD></TR>
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    <TD>&nbsp;</TD></TR>
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    <TD>32.</TD>
    <TD><A name=3DCR32></A>Schweppe H (1993) Handbuch der =
Naturfarbstoffe=20
      Vorkommen-Verwendung Nachweis, Lansberg/Lech :Ecomed, pp 517=96534 =
</TD></TR>
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    <TD>33.</TD>
    <TD><A name=3DCR33></A>Benoy TJ (2003) The illuminator=92s art; =
Turnsole and=20
      Raphael, private circulation to art historians and museum curators =
</TD></TR>
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    <TD>&nbsp;</TD></TR>
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    <TD>34.</TD>
    <TD><A name=3DCR34></A>Friedman JB (1995) Northern english books, =
owners and=20
      makers in the late middle ages. Syracuse University Press, New =
York, USA,=20
      pp 228=96231 </TD></TR>
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    <TD>&nbsp;</TD></TR>
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    <TD>35.</TD>
    <TD><A name=3DCR35></A>Thompson DV (1936) Materials of mediaeval =
painting.=20
      George Allen and Unwin, London, pp 138=96139 </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
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    <TD>36.</TD>
    <TD><A name=3DCR36></A>Edwards HGM, Falk, MJ (1997) Spectrochim Acta =
Part A=20
      53:2685=962694<BR><A =
href=3D"http://dx.doi.org/10.1016/S1386-1425(97)00161-3"=20
      target=3D_blank><IMG height=3D20 alt=3DCrossRef=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/crossref_link.gif"=20
      width=3D65 border=3D0></A> </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>37.</TD>
    <TD><A name=3DCR37></A>Edwards HGM, Falk MJ (1997) Spectrochim Acta =
Part A=20
      53:2393=962401<BR><A =
href=3D"http://dx.doi.org/10.1016/S1386-1425(97)00179-0"=20
      target=3D_blank><IMG height=3D20 alt=3DCrossRef=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/crossref_link.gif"=20
      width=3D65 border=3D0></A> </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>38.</TD>
    <TD><A name=3DCR38></A>Edwards HGM, Falk MJ, Sibley MG, =
Alvarez-Benedi J,=20
      Rull F (1998) Spectrochim Acta Part A 54:903=96920<BR><A=20
      href=3D"http://dx.doi.org/10.1016/S1386-1425(98)00018-3" =
target=3D_blank><IMG=20
      height=3D20 alt=3DCrossRef=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/crossref_link.gif"=20
      width=3D65 border=3D0></A> </TD></TR>
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    <TD>&nbsp;</TD></TR>
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    <TD>39.</TD>
    <TD><A name=3DCR39></A>Robiquet H (1829) Ann Chim Phys 42:236=96257 =
</TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>40.</TD>
    <TD><A name=3DCR40></A>Robiquet H (1835) Ann Chim Phys 48:320=96335 =
</TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>41.</TD>
    <TD><A name=3DCR41></A>Musso H (1955) Naturwissenschaften =
42:513<BR><A=20
      =
href=3D"http://chemport.cas.org/cgi-bin/sdcgi?APP=3Dftslink&amp;action=3D=
reflink&amp;origin=3Dspringer&amp;version=3D1.0&amp;coi=3D1%3ACAS%3A528%3=
ADyaG2sXjtVCksg%253D%253D&amp;md5=3D809ffe4d3b95aca5b14700214072590b"=20
      target=3D_blank><IMG height=3D20 alt=3DChemPort=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/chemport_link.gif"=20
      width=3D65 border=3D0></A> <A =
href=3D"http://dx.doi.org/10.1007/BF00601209"=20
      target=3D_blank><IMG height=3D20 alt=3DSpringerLink=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/springer_link.gif"=20
      width=3D108 border=3D0></A> </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>42.</TD>
    <TD><A name=3DCR42></A>Musso H (1956) Chem Berichte =
89:1659=961673<BR><A=20
      =
href=3D"http://chemport.cas.org/cgi-bin/sdcgi?APP=3Dftslink&amp;action=3D=
reflink&amp;origin=3Dspringer&amp;version=3D1.0&amp;coi=3D1%3ACAS%3A528%3=
ADyaG2sXivFymug%253D%253D&amp;md5=3De6b3e1473edb0db9a323b3ef848b03bf"=20
      target=3D_blank><IMG height=3D20 alt=3DChemPort=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/chemport_link.gif"=20
      width=3D65 border=3D0></A> </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>43.</TD>
    <TD><A name=3DCR43></A>Musso H, Beecker H (1957) Chem Berichte=20
      90:1808=961814<BR><A=20
      =
href=3D"http://chemport.cas.org/cgi-bin/sdcgi?APP=3Dftslink&amp;action=3D=
reflink&amp;origin=3Dspringer&amp;version=3D1.0&amp;coi=3D1%3ACAS%3A528%3=
ADyaG1MXltlOqtw%253D%253D&amp;md5=3D78f55d0099939ead124a002d4e274a06"=20
      target=3D_blank><IMG height=3D20 alt=3DChemPort=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/chemport_link.gif"=20
      width=3D65 border=3D0></A> </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>44.</TD>
    <TD><A name=3DCR44></A>Musso H, Mattheis H-G, Beecker H, Kramer H =
(1957)=20
      Angewandte Chemie 69:178<BR><A=20
      =
href=3D"http://chemport.cas.org/cgi-bin/sdcgi?APP=3Dftslink&amp;action=3D=
reflink&amp;origin=3Dspringer&amp;version=3D1.0&amp;coi=3D1%3ACAS%3A528%3=
ADyaG1cXitFSjsg%253D%253D&amp;md5=3D549c3bdb51b3d36692c0209c81da362a"=20
      target=3D_blank><IMG height=3D20 alt=3DChemPort=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/chemport_link.gif"=20
      width=3D65 border=3D0></A> </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>45.</TD>
    <TD><A name=3DCR45></A>Musso H (1960) Planta Medica 8:431=96446 =
</TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>46.</TD>
    <TD><A name=3DCR46></A>Musso H, Beecker H (1961) Chem Berichte=20
      94:585=96600<BR><A=20
      =
href=3D"http://chemport.cas.org/cgi-bin/sdcgi?APP=3Dftslink&amp;action=3D=
reflink&amp;origin=3Dspringer&amp;version=3D1.0&amp;coi=3D1%3ACAS%3A528%3=
ADyaF3MXns1Wktw%253D%253D&amp;md5=3Dd7adff2f725a17309b1907b341ab5af7"=20
      target=3D_blank><IMG height=3D20 alt=3DChemPort=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/chemport_link.gif"=20
      width=3D65 border=3D0></A> </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>47.</TD>
    <TD><A name=3DCR47></A>Musso H, Mannsfeld S-P (1961) Chem Berichte=20
      94:2585=962589<BR><A=20
      =
href=3D"http://chemport.cas.org/cgi-bin/sdcgi?APP=3Dftslink&amp;action=3D=
reflink&amp;origin=3Dspringer&amp;version=3D1.0&amp;coi=3D1%3ACAS%3A528%3=
ADyaF38XotVKm&amp;md5=3D70d120d41b1e525db7cb34a7ecc548cf"=20
      target=3D_blank><IMG height=3D20 alt=3DChemPort=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/chemport_link.gif"=20
      width=3D65 border=3D0></A> </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>48.</TD>
    <TD><A name=3DCR48></A>Musso H, Beecker H (1957) Chem Berichte=20
      90:2190=962194<BR><A=20
      =
href=3D"http://chemport.cas.org/cgi-bin/sdcgi?APP=3Dftslink&amp;action=3D=
reflink&amp;origin=3Dspringer&amp;version=3D1.0&amp;coi=3D1%3ACAS%3A528%3=
ADyaG1cXlsF2hug%253D%253D&amp;md5=3Dc991fa3cad15163972616a0ecdf5b321"=20
      target=3D_blank><IMG height=3D20 alt=3DChemPort=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/chemport_link.gif"=20
      width=3D65 border=3D0></A> </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>49.</TD>
    <TD><A name=3DCR49></A>Musso H, Kramer H (1958) Chem Berichte=20
      91:2001=962016<BR><A=20
      =
href=3D"http://chemport.cas.org/cgi-bin/sdcgi?APP=3Dftslink&amp;action=3D=
reflink&amp;origin=3Dspringer&amp;version=3D1.0&amp;coi=3D1%3ACAS%3A528%3=
ADyaG1MXitlegsg%253D%253D&amp;md5=3D14bebeb1fb0cb36db321b15f23ee9f8b"=20
      target=3D_blank><IMG height=3D20 alt=3DChemPort=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/chemport_link.gif"=20
      width=3D65 border=3D0></A> </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>50.</TD>
    <TD><A name=3DCR50></A>Musso H, Matthies H-G (1957) Chem Berichte=20
      90:1814=961827<BR><A=20
      =
href=3D"http://chemport.cas.org/cgi-bin/sdcgi?APP=3Dftslink&amp;action=3D=
reflink&amp;origin=3Dspringer&amp;version=3D1.0&amp;coi=3D1%3ACAS%3A528%3=
ADyaG1MXltlOqtA%253D%253D&amp;md5=3D554ab5022adee25a81a29f4af4b09426"=20
      target=3D_blank><IMG height=3D20 alt=3DChemPort=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/chemport_link.gif"=20
      width=3D65 border=3D0></A> </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>51.</TD>
    <TD><A name=3DCR51></A>Wallert A, Private communication to the de =
Brecy=20
      Trust </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>52.</TD>
    <TD><A name=3DCR52></A>Edwards HGM, Wynn-Williams DD, Newton EM, =
Coombes SJ=20
      (2003) J Mol Struct 648:49=9659<BR><A=20
      =
href=3D"http://chemport.cas.org/cgi-bin/sdcgi?APP=3Dftslink&amp;action=3D=
reflink&amp;origin=3Dspringer&amp;version=3D1.0&amp;coi=3D1%3ACAS%3A528%3=
ADC%252BD3sXhsVylsr8%253D&amp;md5=3Da95520419419101a3cbf151f0495a80d"=20
      target=3D_blank><IMG height=3D20 alt=3DChemPort=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/chemport_link.gif"=20
      width=3D65 border=3D0></A> <A=20
      href=3D"http://dx.doi.org/10.1016/S0022-2860(02)00384-8" =
target=3D_blank><IMG=20
      height=3D20 alt=3DCrossRef=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/crossref_link.gif"=20
      width=3D65 border=3D0></A> </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR>
  <TR vAlign=3Dtop>
    <TD>53.</TD>
    <TD><A name=3DCR53></A>Edwards HGM, Newton EM, Wynn-Williams DD =
(2003) J Mol=20
      Struct 651=96653:27=9637<BR><A=20
      href=3D"http://dx.doi.org/10.1016/S0022-2860(02)00626-9" =
target=3D_blank><IMG=20
      height=3D20 alt=3DCrossRef=20
      =
src=3D"file:///C:/Documents%20and%20Settings/AlanW/My%20Documents/CLIENTS=
/tondo/ABCpaperFeb07_web_files/crossref_link.gif"=20
      width=3D65 border=3D0></A> </TD></TR>
  <TR>
    <TD>&nbsp;</TD></TR></TBODY></TABLE></BODY></HTML>

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