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EDITOR
Seath : that e data
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in the
of talc in
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gamon
gamon chouler
Mines
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3. National National
Smith -
Natrics
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School School
Jersey
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LETTER TO THE EDITOR S
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MINERALOGICAL CHARACTERIZATION OF
COSMETIC TALC PRODUCTS
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The entitled
purpose of this letter Consumer Talcums
is to comment on the and Powders Mineral
paper by Rohl et al and Chemical Char-
acterization which appeared in the Journal of Toxicology and Environ-
mental Health 255-284 1976 The paper conveys an erroneous impression that it is reasonably
common to detect the presence of asbestos in counter talcum
powders The authors imply in fact that half of the products studied
are of questionable quality when they state that 10 of the 20 products
examined
contained
detectable
amounts
of
tremolite
and
,
anthophyllite
-
+
principally asbesti The article is misleading and its publication demands clarification in
light of the following points 1 a comprehensive understanding of mineralogy makes it apparent that the reported results are impossible to achieve 2 the analytical methods described do not and can not lead to the conclusions reported and 3 the conclusions drawn are without
sound scientific basis and are therefore misleading and invalid These
points are discussed below The portions of the paper by Rohl et al that describe the geologic
generally occurrences and properties of talc and associated minerals are
correct with one major exception The paper very clearly makes the point that the predominant occurrences of tremolite anthophyllite and serpentine are as the asbestiform varictics and readers other than
. -professional geologists or mineralogists will almost surely reach the '
- erroneous conclusion that occurrences of the asbestiform varieties are the rule rather than the exception It is a fact that the asbestiform varietics of
these minerals are relatively rare and that such occurrences probably
account for less than % of the known world occurrences of each mineral
Further tremolite and anthophyllite are erroneously stated to have fibrous cleavage whereas in fact their cleavage is prismatic Tremolite asbes. tos is
essentially a mineralogical curiosity The analytical methods described by the authors for identification and
quantification of tremolite anthophyllite and serpentine are invalid The
1223
Journal of Toxicology and Environmental 1223-211222236-1226 1977
Copyright '1977 by Hemisphere Publishing Corporation
1 pe
0052292
JNJ 000343099
:
1224
LETTER TO THE EDITOREDITOR
ray diffraction XRD methods described cannot be used to identiis the
Saited amphibole species present to distinguish serpentine from chlorite or the
quantify serpentine or quartz because of interferences from chlorite and
talc respectively
Sh ; a!
- Unequivocal identification and quantification of the amphibole species
present on the basis of the tremolite 8.38 A 110 peak and the
anthophyllite 8.26 A 210 peak is impossible Examination of the powder
diffraction file published by the joint Committee cn Powder Diffraction
Standards JCPDS for amphiboles 52 amphibole cards in the JCPDS file reveals that all 52 have their 110 or 210 diffraction peaks within 0.2 A
of each other For Cuka radiation a change in spacing of 0.2 ^ at 10.5
20 the region step scanned is -11 20 is equivalent to a 20 angular
. change of only 0.25 Slight compositional and structural variations in
the amphiboles readily cause small shifts in the position of the 110 and
210 peaks Similarly very small changes in the position and nature of
the sample surface will cause small peak shifts As a result of general
peak overlap among all amphiboles unpredictable peak shifts and
mismeasurement of peak position it is not possible to identify any
specific amphibole on the basis of the 110 or 210 peak even if the sample is 100 pure amphibole of one variety It is clearly impossible to identify and quantify trace to minor amphiboles by the methods described in this paper Bulk chemical analyses for major minor and trace
elements has questionable value in the identification of an amphibole
present in tracteo minor amount
The authors used the serpentine 004 peak at 3.66 A 24.32 20 for
Cuka for identification of serpentine Chlorite has a major diffraction peak 004 in this region It is well known that chlorite and serpentine are difficult to differentiate by all known methods of characterization but
that their 004 XRD peaks are separate enough to generally allow
unambiguous determination of the presence of both phases when they are
present in quantities sufficient to give definable peaks However the 004
peak of chlorite varies between 3.53 and 3.60 A -25.23 20 for
Cuka depending on the particular compositional and structural variety
present To attempt quantification of trace serpentine in talc by using the
004 peak is not possible since talcs almost invariably contain chlorite far
in excess of serpentine and chlorite will therefore interfere The authors
acknowledge that Stanley and Norwood were confronted with the chlorite-
serpentine interference problem but they still claim to have been able to
use XRD for identification and quantification of trace serpentine in the
;
presence of chlorite samples 12 and 15
In addition if any of the clay minerals kaolinite halloysite or dickite
are present they will also interfere with the XRD identification and
quantification of serpentine The XRD peaks of serpentine chlorite
kaolinite dickite and halloysite are typically broad and often poorly
resolved further complicating identification and almost certainly
eee eed 0052293
JNJ 000343100
DITOR
\ the
or to
2 and
cecies I the wder Action
; filc
0.2 10.5
gular
ins in
) and
ire of eneral
and any f the ble to
the
tra
ibole
0 for ction
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1 but allow y are
004
6 for
ariety
g the te far thors oritele to > the
ckite
and orite porly ainly
LETTETRO THE EDITOR
,
1225
eliminating any possibility of quantifying trace amounts of serpentine by
"+
XRD if any of these interfering phases are present
An additional complication is presented by halloysite if it is present
"
Halloysite
has
a
tubular
structure similar
to that of chrysotile and
_ therefore cannot be distinguished from chrysotile by electron microscopy
The authors used the quartz 211 peak at 1.54 A 60.08 20 for
Cuka for quantification of quartz in spite of the fact that talc has one " large peak and several small peaks in this 29 region that can interfere The
of -
problem
involves
quantification
trace to
miner
amounts of quartz
by
using a weak quartz peak 211 relative intensity 15 that is interfered
with by a strong talc peak 060 relative intensity 55 A recent ray
diffractogram of very pure talc run in this laboratory had the angle
shoulder of this talc peak extending to 59.7 20 for example completely
overlapping the 211 quartz peak position Quantification of trace to
minor amounts of quartz on the basis of its 211 peak is clearly not
possible in the presence of major amounts of talc The interference and identification problems discussed above become
apparent when examining errors associated with the linear equations of the form y = + bx given by the authors to correlate peak area with percent mineral content table 3 From table 3 comparing the known mineral content with the calculated mineral content using peak areas and equation
of fit the error for each data point can be calculated The stated detection limits of 2.0 0.7 1.4 and 0.1 for anthophyllite chrysotile
quartz and tremolite respectively have very little meaning when the errors for each data point are examined The detection limits of 2 and 1.4 for anthophyllite and quartz are less than the lowest standard
observed prepared % and are therefore strictly theoretical rather than
Using the authors calibration equation for the quartz the calculated valuc for the % standard is an overestimation of the true level by 56 At the
stated detection levels for chrysotile and tremolite 0.7 and 0.1 respec-
tively the calculated values from the calibration equations are overestimations of the true levels by at least 100 for chrysotile and 500 for
tramolite Linear calibrations for these types of samples and concentration
ranges are not ordinarily expected and the use of linear equations to fit the data is questionable especially in view of the previous discussion of interferences and invalid procedures For example the data for chrysotile
are distinctly nonlinear figure2 but the authors still use a linear
equation to fit the data I also wish to point out that the quotation from the paper by Stanley
2nd Norwood is a paraphrase rather than a direct quotation Also there is an error in the quoted fiber size of 0.5 X 0.2 ...mrequiring transmission electron microscopy size stated by Stanley and Norwood is
0.5 ^ 0.02 m
.
ems
The entire paper reflects a strong bias to assume that all serpentine
or
and amphibole minerals are asbestiform The fact that the authors added
Sme
te
aa
0052294
JNJ 000343101
*
1226
LETTER TO THE EDITOR EDITOR
- asbestos minerals to talc in the preparation of their standards is by no means an assurance that the samples later examined also contained asbestos Use of such standards has the effect of prejudging the samples
. before they are ever examined and in this case has led to impossible
.
. results and invalid conclusions
In the above discussion I have described some of the errors and invalid procedures of mineralogical identification and quantification as used by the authors It is therefore apparent that the stated major purpose of their paper namely to determine the mineralogical and chemical composition with particular emphasis on the quantitative determination of
_
tremolite anthophyllite serpentine minerals and quartz has not been
achieved Accordingly the results reported are without analytical basis and the conclusions drawn are invalid and misleading
Jerome B. Krause
Colorado School of Mines Research Institute
.
Golden Colorado
GER
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Sle cae oe aie ta an ee ol 0052295
JNJ 000343102