Document Xzxrbv6g83zrNpmERZMZ2DVgK
Ens Ultrasonic oise support films
reda R. 1974. High py by using BeO Microscopy Proc 8th Canberra Australia dchild D. J. eds
E. 1974. The direct molecules in the
scope In Electron
Electron Microscopy anders J. V. and
231 ter program system
-beam dynamical Thesis Arizona State
electron microscopy
of small holes and
k in press
Micron 1977 Vol 8 47 5P5ergamon Press Printed in Great Britain
Practical limitations of selected
for
identifying
mineral
area
particles
electron
diffraction
techniques
R. E. FERRELL JR and G. G.
*
PAULSON
Department of Geology Louisiana State
Baton Rouge Louisiana 70808 U.S.A. University
and
Materials Evaluation Laboratory Inc. Baton Rouge Louisiana 70808 U.S.A.
Manuscript received in final form November 25 1976
Selected area electron diffraction techniques are being suggested
and characterization of mineral particulates in studies
as potentially useful ones for the identification
of these studies it has proven to be
of industrial and environmental health hazards In
make the interpretation
of great value However there are serious limitations in the method many
required to
of diffraction patterns ambiguous or drastically increase the
which
confirm the identification identification of each individual particle in a complex sample amount of operator time
The problems mostfrequently encountered arise because
their degree of crystal perfection and the presence of ofvariations in the thickness of individual crystallites
also eliminate diagnostic reflections The
polycrystalline aggregates developed cleavages
standardization and even then the results
precise measurement of interplanar distances requires intemrnaayl
Electron diffraction patterns
from different minerals are so similar that thay cannot be
are difficult to index and interpret without some
differentiated
the particles
prior knowledge of the identity of
techniques The results obtained from a variety offibrous minerals
mineral identification in polyminerallic samples It
indicate that the technique is not well suited for
but may be useful in a qualitative
cannot
recomended for quantitative identification
identification
or a complex aggregate Electron
sense to tell whether a particle was crystalline
diffraction must be supplemented with other
fibrous twinned
unambiguous identification
information in order to obtain an
INTRODUCTION
frequently Electron microscopy is an extremely valuable
faonralytical technique which has been employed
many years to study the morphology of finely
divided particulate materials The electron
microscope can also be used to obtain a selected
area electron diffraction SAED pattern which
contains information about the
of the material in the electron becarymstaanldstirnusctoumree
cases can be used to identify the crystallites The
two techniques are especially useful because the
observations are
unique enough to provide an adequate identification
In the field of
procedure
mineralogy the combined ob-
servations are useful in
many cases where indi-
vidual small crystals must be identified The
Also Department of Engineering Science Louis-
iana State 70808
University
Baton
Rouge
Louisiana
technique has been used to determine crystal structures identify traces of minerals in rocks and characterize the phases formed during
thermal decomposition or nucleation of micron-
sized particles There is an increased interest in
the mineralogical applications of electron
diffraction results as explained by Ross and Christ 1958 because the method can be used to identify small particulpaotteesntiinalaliry and water samples For example Clark and Rudd 1974 presented electron micrographs SAED patterns and ray diffraction data for asbestos
standards supplied by the IUCC International
Union Against Cancer and have
ways that the results might be useful isnugsgteusdtieeds
of industrial and environmental health hazards
The SAED technique is extremely difficult to
use with some minerals and its application to others should not be
attempted without an
understanding of the potential sources of error Among the most serious limitations are the
47
JNJTALC0000708
~-
48
R. E. Ferrell, Jr. and CG. G. Paulson
s4 ample8 thicknessa,ritshieng from R. Ferrell in
from variations variations
high energy energy beam
SS electromagneticeelelctromeagnetcic tromagnetic
specimen
demonstrated demonstrated that symmetry altered
diffraction diffraction pattern
by minor
- changes
in
objective current current The
thermal instability some minerals
vacuum them thermal
standards
difficult examine examine Internal
)
(b)
must standards interplanar spacings spacings employed review
interplanar interplanar following
of the prin-
ciples
brief review review prin- prin-
following diffraction and discussion
ciples method's practical practical limitations
discussion
fying
limitations samples identi-
particulates particulates fying cases diffraction
and
samples
In
several specimens
collected collected am-
phibole asbestos asbestos mcuimmninegtroniatel cummingtonite cummingtonite an as
examples examples the
encountered and
results
obtained
problems encountered encountered made obtained
diffraction among the electron
comparison data from
diffraction and habit
simple device is the radial radial displacement the the
diffraction spot ring ring is the diffraction
constant and is
diffraction camera
the Bragg Bragg diffraction angle
the specimen to
screen distance and the the angle ) such that
L these tan 20 ========
or sin sin cos 0 cos = =
dTehveiceesneirs gy of the electron beams very small small
values
sufficiently
of 20
great
that
only
very
small
are observed and
monitoring monitoring changes monominerallic
than identifying identifying
present monomineralic poly-
discussion discusion similar to
ones minerallic minerallic This
ones Alderson
Halliday 1965 and
PRINCIPLES PRINCIPLES ELECTRON DIFFRACTION
cos cos 201 ~ ]
Thus for all practical purposes the
diffraction condition is
Bragg
sin 0 = L
Substituting the derived which which
an expression is direct
can used
lattice spacing ( from from
Land Thus known
Thus
d= the
constant constant difficult measure measure
by obtaining obtaining diffraction
evaluated
directions
standard
with
diffraction pattern pattern from known
spacings can then
Unknown simple simple
obtained simple simple
ratio can then be obtained
fluorescent
by a simple
and and the viewing screen In the the displacement displacement undeviated otnehfuenctdiiffroactned
beam beam from undeviated undeviated one a function of
Variations in can quite
an an i results to to k used the for are are thi diffraction pa
Electron d
cleavage cleavage ba
irregular irregular star
arrays in caused th
caused close The pattern pattern
pattern pattern tl
rows of close The pattern
JNJTALC000070860
gy
eam
electromagnetic
lens
specimen
viewing screen
lectron diffraction
diffraction rings or of the specimen and
of diffraction in a
isplacement of the
diffraction camera
action angle
nce L and the
cos 20 = R
ams used in these
at only very small
1
poses the Bragg
e Bragg equation
h can be used to
spacing d from casuring R when
ffraction camera e It is evaluated
pattern from a ies Unknown d-
ned by a simple
Rstandard
quite pronounced
ation in a number
f precise measure-
ectron diffraction
Practical Limitations of SAED for Identifying Mineral Particles
49
patterns an internal standard is a necessity In all results to be discussed below a thin gold film was used for calibration The gold diffraction effects are the continuous rings in the electron diffraction patterns Fig 2
Electron diffraction phenomena are fairly
easy to interpret because the pattern produced on the fluorescent screen is a direct image of a
section of the reciprocal lattice and the recipro-
cal lattice is directly related to the mineral's
atomic structure For example the arrangement
of atoms in cummingtonite can be reduced to a
Bae Ome TR Ge sad Se
0205
td
re")
YRS 2
OU 4
Ree
ByBes 3 : eet
SMA
ae
OB OS
Fig 2. Typical electron micrograph and electron diffraction patterns produced by fibrous minerals in air or water samples The micrograph a illustrates the straight sides produced by cleavage in crystals of cummingtonite and the tendency for the particles to agglomerate The irregular background is caused by the thin discontinuous layer of gold applied to the sample for internal standardization of the diffraction effects Some crystals produce clear hexagonal arrays of diffraction spots b while others are more complicated c The continuous rings are caused by the gold standard A typical pattern of cummingtonite is illustrated by the latter The rows of closely spaced diffraction dots are perpendicular to * and the rows are separated by 001 The pattern is complicated by a second row of dots from another crystal in the electron beam
which lies at an angle to the major crystal ^ 9,000
a al
JNJTALC0000708
aad
50
R. E. Ferrell Jr. and G. G. Paulson
* dhki
Origin
100 .951 .951
100
1001) 01
a
200
primitive set of equivalent points which form
lattice with monoclinic
a
points in the * and *
symmetry The vectors
defining the actual unit cell
001 001 101
plane such as 100 100
b = 1.819nm c = 0.533nm are a = 0.951nm
A
101 etc.
The
and B = 101.90
complete planar array of reciprocal lattice
relationship between an actual lattice points could be constructed as in the
plane and the
corresponding reciprocal lattice
fashion for other planes in the
above
network is shown in Fig 3. This is a
hil or h21 and
crystal such as
tion of the h0 plane of cummingtonrietpereasenndtai-t
a dimensional network would result This is the reciprocal lattice but
can be used to predict the arrangement of
all of the points in it would
when the electron beam is
spots
diffraction
not appear in the
axis
parallel to the zone
010 Several planes in the real lattice are
pattern Only those points which intersect the Ewald sphere are observed This
shown The indices of these are enclosed in sphere which limits diffraction is drawn
regular parentheses The reciprocal lattice points are along lines drawn through the origin
the origin of the reciprocal lattice its through
in the electron beam and its
centre is
radius is 1/2
and perpendicular to a
A
given reflecting plane
1/2
In electron diffraction a number of
reciprocal lattice point is in effect a point which represents a real plane in the
lattice points are usually observed berceacuisperotchael
reciprocal lattice
structure The lengths of the
crystal
Ewald
vectors are very small and the
vectors which locate the
reciprocal lattice
sphere is large A section through the reci-
related to the distance
points are inversely procal lattice and the limiting sphere helps
and are arbitrarily scalbeedtween the lattice planes explain this situation Fig 4 As shown the
in the illustration The lattice point 100 is on the line
represent-
reciprocal lattice points are elongate spikes because the crystals yielding good diffraction
ing the reciprocal lattice direction a which is perpendicular to ( 100 and the point 001 is in
are usually thin and therefore are not
triperiodic The
perfectly
the direction of * which is
resulting diffraction pattern
perpendicular to would contain the points 000 001 001 002
013 and 013
vectors 100 and respectively The points
aalsssoocsihatoewdnwiItfhthtehe planes 101 and 200 are
half that of
spacing of one plane is one-
will be
another the reciprocal lattice point
twice as far from the origin i.e. 100 and
200. The
resulting pattern would contain all
Single crystal electron diffraction
can
be
interpreted
in
a
fairly
patterns
straightforward
manner because with a little knowledge of
crystallography one can predict the kind of
image to be formed by certain minerals Close
agreement between observed and theoretical
patterns identifies the particles However in
ewald
sphere
Fig 4. A hypother sphere which limit lattice of cummingt intersecting the Ew
appear in the
practice electron rather ambiguous of the problems are
in more detail late
1. Crystals may
measurement of i internal standardi many minerals ar
be distinguished by 4. developed diagnostic reflectio planar spacings are
because the zone may not be coincid
6. Polycrystalline c
may produce spec
may be more diffic
MATERIAI
After a careful
diffraction pheno standpoint several Philips EM tr
scope and actual d tained The minera
properties are listed
were selected becau
commonly occurrin
ratios greater than
test the applicabilit
the identification of
The samples were
the following mann
en eee ee JNJTALC000070862
|
T
e and the re-
and of; is the
e such as 100 100
f reciprocal lattice
1 as in the above
_he crystal such as
mensional network
iprocal lattice but
not appear in the
hose points which
are observed This
n is drawn through
Lattice its centre is radius is 1/2
umber of reciprocal
"servedbecause the
very small and the
-on through the reciiting sphere helps 4 As shown the re elongate spikes ng good diffraction re are not perfectly diffraction pattern
000 001 001 002
diffraction patterns
irly straightforward
little knowledge of
redict the kind of tain minerals Close
ed and_ theoretical
ticles However in
Practical Limitations of SAED for Identifying Mineral Particles
51
ewald sphere
electron beam
i
by
023
}reciprocal
reciprocal lattice plancs
023 h21
Fig 4. A hypothetical section through the Ewald sphere which limits diffraction and the reciprocal lattice of cummingtonite The elongate lattice nodes intersecting the Ewald sphere are the points which
appear in the electron diffraction pattern
practice electron diffraction patterns can be
of the problems are outlined below and
in more detail later
discussed
1. Crystals may be imperfect 2. The precise measurement of interplanar spacings requires internal standardization 3. The spacings of many minerals are so similar that they cannot be distinguished by electron diffraction methods
4. developed cleavages may eliminate diagnostic reflections 5. The measured inter-
planar spacings are usually longer than expected because the zone axis of the diffracting plane
may not be coincident with the electron beam
6. Polycrystalline or fibrous mineral aggregates may produce special diffraction effects which may be more difficult to analyse
gold film was applied to a collodion 200
mesh electron microscope grid The gold film forms the grainy background of Fig 2. 2. The mineral particles were dispersed in water and a
droplet of each suspension was applied to separ-
ate grids 3. Electron diffraction was produced in
the electron microscope operated at 80kV 4
The patterns for the minerals with the internal
standard were recorded on photographic film 5. A working copy of the diffraction pattern was
prepared by placing it in an enlarger and pro-
jecting the spots on a piece of plain white typing
paper The positions of the dots were marked
directly with a pencil Alternately one could
measure from the projected image but we found
a copy to be more desirable for reproducible
measurements 6. Uniform enlargement of the diffraction patterns was obtained by adjusting the projector until the gold diffraction ring with a spacing of 0.0695nm was exactly coincident with a previously drawn standard circle having a radius of 2.56in 7. The patterns were indexed if possible and R was measured with a scale
having fifty divisions to the inch Repeated
measurements indicate this
error of 0.001 The
technique has an camera constant
including the enlargement step was 890.12 This value was used to simplify the data hand-
ling and reduction It is of course a unique value for each laboratory 8. The interplanar
spacings were measured and recorded as the
number of units on the scale then divided by 890.12 the camera constant in this procedure
to convert to nm units
DISCUSSION OF RESULTS
MATERIALS AND METHODS
After a careful consideration of electron
diffraction phenomena from a theoretical standpoint several minerals were examined in a Philips EM transmission electron micro-
scope and actual diffraction patterns were obtained The minerals studied and some of their
properties are listed in Table 1. These minerals were selected because they are representative of commonly occurring ones with length to width ratios greater than 3 and are good ones to test the applicability of the SAED method for the identification of micron particles
The samples were prepared and examined in the following manner 1. A thin discontinuous
The electron diffraction patterns of cummingtonite are characterized by two rows of dots Fig 2 In one direction the spacing between
the dots is much smaller than the other and the
pattern has a layered appearance The dots form a regular planar array that is almost rectangular instead of the 102 parallelogram as illustrated previously Because of this difference one must assume that the crystals are in some orientation
other than the one described and it is necessary to try and determine the orientation before
proceeding
Cummingtonite has a prominent cleavage 110 which creates elongate crystals and enhances the possibility of preferred orientation The crystals most likely will come to rest on 110 or some other face in the form The axis
nn ae
JNJTALC0000708
wal
aterm rt 3
Table
which may have fibrous habit and therefore may
dimensions
dimensioaWyyu,n Jo 70 techniques techniques
Ajteau peuHoy
Mineral
Crystal
s[B1sA39Cleavge sjeisA19 pamojs : AproximateAproximate
dimensions
Steisk49 Compsiton
Compsiton
&
woxy aiqy
sfeisk19
ayruo3tN ay-9[paou Cleavge ( ayjdwiour ay-pau fq
snoaqy 7 aniq AyD01q
uasid
selnqey
Compsiton
Compsiton you
sted
aiqrxay sadyentd
Actinolte Cleavge 0.9 2 you
0.53Ca Mg5Ca MgC5a Mg5 SiO2 OH
Avie
se
Long
remaioe
arenbs Long
1.81 snoiqty Actinolite
110110 perfectsyley 0.9 1.81 0.53
Iron rich
ue ey
Anthophylite
perfect
(
Anthopylite0}
imperfect
0.53 (
Monclinc CrocidlteMSYIP
imperfect
Na
Diopside
010 imperfct 0.52 Mg aq
Hednbrgite { ]*tvesy-zey 0.9750.891 (HO)["S]8w glaucophne Grunerite 0.5250.530.525 Fe OH 2 0.526 110
Aeur
Mg SiO22 needle
24) Syy)
0.9850.985 ep
[ SW 3W)
com on
aojsz9y) Hornblende
Hednbergitepi 3 jou
Monoclinic
Ecg 110 good <S0 0.9 geo 9259 0.53 Na Kvariable amphibole Fe with gc'o generaly
=
ayeunxoidySUOIDULIP Tremolite
Monoclinic Monoclinic
[]J29
ig1 110
good lel
0.99 0.814
1.278 0.716
NaAl Mg
SiO2 SiO2 OH )
Usual y
Enstaite Jun
e
660 010 good } 1.823 1.823 0.81 0.519 Mg SiO3 Eze" zg 4620 99h Stuby
SiO3 =X
go d SiO3 01
good
Peo
Monclinc poos fibrous parlelparalel to 1.46 1.46 0.9240.533 Mg3Si SO5i O5OHOH ywaysad{701} Jaqferd roling {
{p71} 110
goodO10} {901}
0.96 0.96
1.830.53
Mg Mg Mg
Fe
Si,O2 Si,O2
{
OH
OH
2
snoaqy
Long
uraysd
[eyshary oTuPoUCTuIPouN|y a1quioysG STUPOUC dtulPpou|oy1]uTPOUCWy SuIpocydUTPOUA dTurPoupySUNIL 1quoys0I9aquioysmp219 TUNE dTUPoUO SPouW] T,
=
=
an
ayuoZrwumny tances with canreduces corespond observeTdhe reciprocalpane ddeevveellooppeeddFig saungesiasudaAypy SUOISE]FOM aqHoskayr
7)
SRESRE "86-238aesiezPOGo-tygo29%Sad535 SSBes
oO SE
oEE
2.4 onet os
geeE'sSG" og
80
3
|
'
38;g^'
opegisapeosCgUEGS 3
>? ae
Paulson 822 ae
PaulsonPaulson S-& Ble
~an
ss
>00
-
OEE
25 U8 S&
2
ae ageEs cokes PES ees on BOG gee ESE
FO
aSBag Ses yefeu
ass
yB
as oe
e
ESS
mo
ee
Eso.
PagrToas22a
ot -
RSEOGypgSoESPES easStegue22te ee SSC Sem
oo er
2SsihHatos58be A
GSE RAGzt2 EescesESE 80,58 58255ee#Ace aves ne me
a
G
w3S ee82
US
JNJTALC000070864
formed
fibre
plates crystals
flexible up
OT
as
aciular
Del Ocurs roling Long
at by
Si 05 SMi,gO2
0.53 0.53
0.924 1.83
1.46 0.96
X to
good
1} 02parlel good
}
001 fibrous 110
Moncli Moncli
Chrysotile Cumingtoe
Practical Limitations of SAED for Identifying Mineral Particles
53
therefore will be parallel to the specimen support grid and the repeat distance along it should
therefore appear in the diffraction pattern The
other orientation represents some plane parallel to c and intersecting the a and b axis but its precise orientation cannot be determined The maximum spacing to be expected should not exceed about 2nm Fig 5
electron
beam
Cc
Table 2. Results of cummingtonite spacing measurements by electron diffraction
Average value for 001
0.5465nm
Standard variation in 10 meas-
urements
Range of observed values Average 001 determined by
ray diffraction Range of measured values in
unidentified crystallographic
direction
0.027nm
0.5267-0.6268nm 0.5215nm
1.0049 1.9074nm
plane plane of viewing screen
Fig 5. Preferential orientation of crystals on welldeveloped cleavages may make some electron diffrac-
tion patterns difficult to interpret The departure
from perpendicularity of a given reciprocal lattice plane to the electron beam causes the projected reciprocal lattice vector o to be different from
----- --
The above analysis is consistent with the observed patterns The closely spaced points represent the distances along the unidentified reciprocal lattice vector The other points correspond to multiples of 001. Because the points are in reciprocal space the shortest distances on the pattern correspond to the largest spacings in the crystal
The prominent 110 cleavage helps in the interpretation of the pattern but drastically
reduces the amount of useful information that can be obtained There is considerable variation
in the spacings to be observed and the reciprocal lattice vectors are difficult to identify Because of these limitations only d 001 can be measured with any reliability
The results of the measurement of d 001 for
ten different specimens of cummingtonite are shown in Table 2. The average spacing is 0.5465nm as compared to 0.5215nm by ray methods This is approximately the amount of
agreement that one would expect between the
two methods but the deviation about the mean
is very large for electron diffraction results For example the measured values ranged from
0.5267-0.6268nm This is because electron
diffraction is a single crystal measurement for the most part and slight variations in the
orientation of the crystal or mistakes in indexing the pattern will have pronounced effects
In the unidentified reciprocal lattice direction
the measured d values vary from 1.0049nm-
1.9074nm In some cases it is difficult to decide
what to measure As suggested earlier these
values have no practical significance for mineral
identification because you would have to have
prior knowledge of the minerals present in order to make the determination In other words the
orientation of cummingtonite on its well
developed cleavage restricts the number of
actual spacing measurements made without assuming a priori
and orientation
that can be identification
The indexing of the electron diffraction patterns can be difficult if systematic absences reduce the number of dots or if twinning crystal defects or polycrystalline particles increase the number of dots In Fig 2c the array of reciprocal lattice points has a pseudohexagonal ap-
pearance because reflections with / = 1 are
absent Twinning and rotation of the k reflecting plane about the electron beam produce a pattern which is typical of polycrystalline materials The cummingtonite pattern has begun to develop diffraction rings Unfortunately these rings are no more useful than the spots because you cannot identify the spacings they represent The number of rings produced by a polycrystalline aggregate may also be too great and closely spaced for effective measure-
ment
Electron diffraction methods are limited in
the identification of cummingtonite In good single crystal patterns the appearance of the
t
JNJTALC00007086
1A etmeee
nt
()
54
R. E. Ferrell Jr. and G. G. Paulson
reciprocal lattice points is characteristic in a is the repeat distance between
qualitative sense because the
reciprocal lattice
rows of dots
closely spaced points along * and this dimension is not unique
of are readily observed Because of the enough to identify the minerals the
good 110 cleavage quantitative measure- family or closely related mineral
amphibole
ments are restricted to d 001 and even this
species
vary considerably
may
Wollastonite albite and chrysolite specimens
Many of the other minerals in this
produced electron diffraction patterns which
study set were different from cummingtonite The wol-
possess a good or perfect cleavage parallel to the lastonite reciprocal net was almost a
with
crystallographic axis The symmetry may be
square
edges of 0.7418nm and 0.7120nm This is
slightly different but the cleavage forms are
very
close to what would be expected from a crystal
usually 110 or 210 Therefore the same of wollastonite and the spacings represent *
general prismatic forms and orientations would be expected and only axis spacings of the same
and * respectively One of the albite patterns
formed
a magnitude as that of cummingtonite should be
partial parallelogram and spacings of
0.8092nm and 0.7418nm were measured and
observed Good complete single crystal electron identified
diffraction patterns of these should be identical
tentatively as * and * The results were not this good for all the specimens and
within the limits of the technique
therefore most of the incomplete patterns would
Amosite anthophyllite hornblende crocidolite hedenbergite actinolite diopside tremo-
not have been identified as wollastonite or albite or even
lite and grunerite have the requisite cleavage
The axis dimensions also fall within the
distinguished from cumming-
tonite Therefore even in cases where the
minerals being examined have very different
narrow limits 0.5251nm to 0.5348nm This
range is narrower than the one observed for the
crystal structures the inability to obtain a
complete diffraction
from all
cummingtonite samples Enstatite and hypers-
thene are also likely candidates for the above
pattern
particles
makes specific identification of each small
crystal impossible Thickness variations and
category but their patterns should exhibit a crystal defects are thought to be the
major truly orthogonal array
causes of this problem
As predicted most of the SAED patterns from
One of the
unique diffraction
the above minerals were like those of cumming-
observed chrysotile tonite When good single crystal patterns were tic
was that of
chrysotile The
pat erns
characteris-
obtained they could be overlaid and the dis-
rolled tube crystal morphology of this
mineral creates a situation where all possible
tances between the points along * were similar reciprocal lattice planes parallel to the fibre axis
identical within experimental error and the are in a position to satisfy the condition for
spacings in the other directions were variable diffraction As a result the pattern is a series of
and difficult to relate to a specific crystallo- streaks perpendicular to the fibre axis Occasion-
graphic direction
Four hornblende diffraction
ally spots may be superimposed on the streaks
patterns provide good examples to illustrate the
or small segments of arcs from fibres parallel to
extreme varia- the electron beam are seen One does not find a
bility in spacing measurements caused by the great deal of difference between the
preferred orientation of crystallites Circles and
crysotile
were drawn through the points on incomplete
diffraction patterns in order to determine how
cummingtonite spacings because the axis about which the rolling takes place is the axis
and its length is 0.534nm The streaked diffrac-
many discrete reflections were present The tion lines are
number of spacings observed varied from seven
essentially equivalent to the pattern produced in a rotation ray camera and are
to eighteen on the different specimens These quite distinctive for identification of
a patterns were then placed on light table and
the coincident circles marked on each The
However all chrysotile
chrysotile
particles did not yield
the same results and there are other
maximum agreement between circles and
therefore spacings was four In most cases the
which
may exist as rolled
tubes i.e. halloysite
meme}
circles corresponding to a multiple of d 001 were the ones which overlapped perfectly This
~~
ldmake it very clear that the only consistent
parameter to be determined for these
the electron diffraction technique
SUMMARY
The results obtained during the study support the contentions of others Brindley and de Kimpe 1961 as well as Ross and Christ 1958
that electron diffra
ray diffraction polyminerallic sam to identify single cr problems encount patterns
Electron diffract
obtain and only th crystal patterns |
orientations can be
interpreted quar cleavages in many the crystals from a
tion and restrict s
In the amphibole only repeat distan d 001 could be n
there is more varia
samples of the same separate species
Other minerals su
chrys tile may be
boles in some case
shape and the qu
diffraction pattern
ing characteristics
patterns are avail
circles from polyc good for identificat
In conclusion e
are difficult to inter
not be recommende
tion of mineral par It would be very dif tion results to dete
amorphous an amp In a qualitative sen
whether a fibre was |
The difficulties in
especially importan ing to identify the so
JNJTALC000070866
reciprocal lattice on is not unique of the amphibole
species solite specimens
patterns which onite The wol sta square with am This is very
d from a crystal
gs represent * e albite patterns
and spacings of
measured and 1 * The results
. specimens and
e patterns would wollastonite or
from cumming-
ases where the
|
e very different ty to obtain a
rom all particles
of each small variations and
o be the major
Fraction patterns The characterisphology of this
here all possible
] to the fibre axis ne condition for
tern is a series of
re axis Occasioned on the streaks
fibres parallel to e does not find a een the crysotile
because the axis place is the axis streaked diffracent to the pattern
camera and are ion of chrysotile les did not yield
e other minerals
i.e. halloysite
the study support Brindley and de and Christ 1958
Practical Limitations of SAED for Identifying Mineral Particles
.
55
that electron diffraction is not as amenable as
ray diffraction to mineral identification in
polyminerallic samples It is virtually impossible
crystal particles because imposible the to identify single
problems encountered in interpreting SAED
patterns
_
Electron diffraction patterns are difficult to
obtain and only those relatively complete single
crystal patterns from specimens in special orientations can be unambiguously indexed and
interpreted quantitatively unambiguosly developed
cleavages in many monoclinic minerals prevent
the crystals from assuming this special orienta-
tion and restrict severely the methods utility
distances the amphiboles
only repeat
and pyroxenes examined
of 0.53nm equivalent to
unfortunately d 001 could be measured and
there is more variation in the measurement of
samples of the same species than there is among
separate species
separate minerals such as wollastonite albite and
chrys tile may be distinguished from amphiboles in some cases The cell dimensions its
shape and the qualitative appearance of the
diffraction pattern may be used as identify-
ing characteristics when relatively complete
patterns are available Rings or diffraction
circles from polycrystalline particles are not
good for identification purposes
In conclusion electron diffraction analyses
are difficult to interpret and the technique can-
not be recommended for quantitative identifica-
tion of mineral particles in composite samples
It would be very difficult to use electron diffrac-
tion results to determine whether a fibre was
amorphous an amphibole or a amphibole In a qualitative sense it may be possible to tell
a whether fibre was chrysotile or another mineral
The difficulties inherent in the method are
especially important to consider when attempt-
ing to identify the source of particulate pollutants
because electron diffraction techniques have to be supplemented with other information such as
probe determinations in order to obtain
unambiguous information It should not be used as the sole means for establishing the
identity of mineral particles in complex samples
In this paper we have attempted to call attention to some of the negative aspects or difficulties associated with the SAED technique because there are many electron microscopists entering this field who might not be aware of
its limitations There are ways to overcome many
of the problems which we have discussed and we cannot deny that electron diffraction is a
very powerful analytical technique However the difficulties do exist and are very prevalent when dealing with natural samples composed
of many mineral varieties Practical considerations such as time and effort do restrict the
utility of the SAED technique
REFERENCES
Alderson R. H. and Halliday J. S. 1965. Electron diffraction In Techniques for Electron Microscopy Kay D. H. ed Blackwell Oxford England
478-524
Brindley G. W. and De Kimpe C. 1961. Identification of clay minerals by single crystal electron diffraction Amer Min 46 1005 1016
Clark R. L. and Rudd C. O. 1974. Transmission electron microscopy standards for asbestos Micron 5 83 88
G^...ven N. 1974. Factors affecting selected area electron diffraction patterns of micas Clays and Clay Minerals 22 97 106
McConnellJ. D. C. 1967. Electron microscopy and
electron diffraction In Physical Methods in Determinative Mineralogy Zussman J. ed Academic Press London 335 370 Ross M. and Christ C. L. 1958. Mineralogical applications of electron diffraction I. Theory and Techniques Amer Min 46 1157-1178
nr
i
JNJTALC0000708