Document 1QwOg3JwM7LNMo05b7qZrQm3m
INTERNATIONAL UNION OP PURE AND APPLIED CHEMISTRY Applied Chemistry Division, Pesticides Section., Commission on Pesticide Residue Analysis
Working Paper On Mass Spectrometry of Organo Chlorine Compounds
and Attempts to reach 'Positive Identification'
Read before October 1968 Meeting Sittingbourrie, Kent, U.K. by ' Gunnar Widmark
Institute of Analytical Chemistry, University of Stockholm, 104 05 Stockholm 50, Sweden Co-workers: Leif Bergstedt and Anders Laveskog Institute of Analytical Chemistry, University of Stockholm
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Sirs:
In view of the well-known limitations of BCD, TID, BID and MCI) decectorsx
now in use in the gas-chromatographic analysis of pesticide residues, our
research group at the Institute of Analytical Chemistry, University of
Stockholm, is Investigating various alternatives.
We have specified the requirements of this new detector as follows:
1. It should achieve the same sensitivity, or better, than does the ECD
for chlorinated pesticides. In general, 100 pg of sample injected into
the gas chromatograph should be detectable.
2. This sensitivity should be applicable to all types of compounds which
oan ,be analysed by gas chromatography.
3. This general sensitivity should also be selective in an adjustable
way, so as to discriminate between the major and minor components of the
Rample mixture, and to aid peak identification.
A detector which fulfills the above requirements may .be too advanced,
and hence expensive, to replace those now used in general pesticide-
residue analysis; simple detectors, such as the ECD, will long be used,
particularly for routine and quantitative work of this kind. On the other
hand, improved GC-detection systems are needed in research and development
laboratories to complement the less versatile instruments generally
available* To illustrate the need for'research on new detectors one may
cite the reluctance of residue analysts to consider currently--available
analytical proofs as legal evidence.
Our first step in developing the new system was to draw up the flow
chart shown in Pigure 1 (page 2). Exhaustive methods of cleaning up and of
separation were considered, so that in conjunction with simple GC detectors
a known pesticide of a given chemical class could be identified. However,
although work along these lines has led to some new and useful methods
of confirmation, essentially-chemical methods cannot provide a.general
solution to the problem of positive identification-.
As Pig* 1 clearly indicates, of the instrumental identification methods
available at present, only'mass spectrometry. (MS) provides sensitivity
comparable to that of the ECD* Although aromatics axe detectable by MS
at much lower levels than most aliphatics, the'differences in MS response
factors are not as drastic as those of the ECD, The mass spectrometer may
x
ECD, TID, PXD and MCD-are respectively, the electron capture, thermionic,
flame ionisation, and micro coulometrie detector.
..
.
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t
t
tr Ik
FIGURE 1.
SEPARATION
-
identification
(confirmation auaxitltation)
Cleaning-up
1t i!
i DC # |
,t 1 !i
1 I 1 GC ! !
Reactions
ug-pg (100 ng)
Figure 1. Slow chart of separation and identification processes in pesti cide-residue analysis. Full line indicates that on-line combinations.are available (thick line indicated that they are in common use)} dotted' line manipulations.
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be classified as a general detector.
By using a mass spectrometer focused at a certain moss number as a
GC detector, while interposing slow-acting filters to reduce the noise
level, 100 pg of eluant is generally detectable, and in special cases
. this amount may be very much less (e.g. 1 pg of toluene). The use
of two or more mass numbers is a move in the direction of positive
identification. This technique requires alternation (at 1-10 cps)
between the selected mass numbers so that, unfortunately, slow-acting
filters must be excluded. Sensitivity is hence reduced, but the method
undoubtedly affords an elegant means of overcoming certain gas chroma
tographic limitations, as shown by Sweeley, Elliot, Pries and Ryhage (l);
see also Schomburg and Henneberg (2). In the form of 'mass fragmentography1
the refinement has been used by Hammar, Holmstedt and Ryhage (3) to
determine drug metabolites in human blood.
The most likely mass-spectrometric method of identifying the compound
which produced a given GC peak is a recording of the entire spectrum.
However, scanning mass spectrometry usually gives more information than
is conveniently handled, and a correct recording of intensities requires
either slow scanning or amounts of material not always available in
pesticide analysis. The latter limitation is illustrated in Figure 2
(page 4); samples of lindane, respectively 1 ug and 25 ng, were injected
into a combination GC/MS instrument (LKB-9000). LSaximum and minimum in
tensities from ten scanning mass spectra are marked, and show that for the
25 ng Injection the variation is too great to allow correct recognition of
characteristic isotope distribution patterns.
Figure 2 indicates that in the latter case too few ions are reaching"
the defector. This assumption is in accord with a report of McFadden and
Bay (4); see also littlewood (5). Thus, repetitive scanning of a small part
of the mass spectrum is required to separate the.true isotope 'fingerprint1
from the background noise. At our Institute, we have recently coupled to
our mass spectrometer a- novel recording system, consisting mainly of a
multi-channel analyser (intertechnique DIDAC-4000) which allows on-line
digitized recording, preferably while at the maximum of a GC peak. We can
now scan repetitively up to ten mass units at a rate of up to ten sweeps
per second. Alternatively, using a mass marker, we can repetitively record
the whole mass spectrum. The instrumentation also allows subtraction of
the bleeding, and then normalisation, and print out in digitized or plotted
form*
'
Figures 3-6 (page 5) illustrate an application of this apparatus which is
particularly pertinent to our pollution studies,, The isotopic pattern for the
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--<---- 250
(
rigUJC r., .
_g
-9
/ '\
Mbb8 spectra of 10 go (upper trace) and 25 x 10 gm (lower) of
lindane injected into gas chromatograph.All spectra have been norma
lized to base peak. Horizontal bars represent max mum and minimum
values .from ten recordings of each spectrum
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GC/MS Analysis of tetraethyl lead*
Spectra recorded when using multi-channel analyser (DIDAC-BOO*
Jnterteohni<iue) on-line to GC/MS (lKB-9000)
r '
f
# > \
rr
- -r '
o
.
V*> va ; V****^^*^
Figure 3. Mass spectrum in m/e range 235-237 (PbSt ion) from 28 x 10"9 gta injection of tetraethyl lead into gas chromatog''apt (LKB~9000)j 30 sweeps at 2 sweep a/sec*
maaad . m*J imJ
Figure 4* Integrated version of pattern shown in'Figure 3.
Figure 5. Mass spectrum in m/e range 235-237 from 0*3 x 1(T^ gm injection of tetraethyl lead} 30 sweeps at 2 sweeps/sec*.
r
4'
_
f
* ' s I
Figure 6, Integrated version of trace in Figure 5*
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pbBt+ ion can be correctly recognised from only 2^ ng of tetraethyl lead
(Figure 3 - normal spectrum; Figure 4 - integrated spectrum). Even if
the weight of tetraethyl lead injected into the gas chromatograph is re-
duoed by two orders of magnitude to 0.3 ng, an almost 'true' Isotopic
pattern, while invisible in the normal spectrum (Figure 5), is reproduced
in the integrated version (Figure 6).
Although these improved methods of the recording of isotopic patterns
are undoubtedly of great value as an aid. to the chemist in the recognition
of compounds present in pesticide residues, the rationale of the method
can be criticised. It is possible that a wholly fortuitous combination of
mass spectral peaks could give rise to the pattern then assumed to be the
result of a certain isotope distribution. One could argue, for example,
that a pattern even as specific as that of the CHjHg+ ion could arise
by chance. Further proof of compound identity, sufficient in fact for
legal purposes, but still not absolute, may be provided if some more
characteristic patterns deriving from the same compound are found in the
same mass spectrum..
'
Further proof of identity by MS in residue analysis can be provided by
making use of atomic mass defects; for this purpose a precision of the
order of 0.001 mass units is required in the measurement of mass number.
In fact, modern high-resolution mass spectrometers usually allow more
accurate mass-number measurement than is required for the determination
of the elementary composition of the ions, but need more sample than is
often available in residue analysis. Accuracy just sufficient to allow
calculation of elementary composition may, however, be obtained by the
use of peak-matching methods at medium resolution, with concomitant
smaller sample size. Although a growing need is evident, not only among
residue analysts, for methods of rapid elementary analysis of fractions
eluted from a gas chromatograph, neither of the above techniques can yet
be readily used during the short time available as the compound emerges
from the column.
"'
If mass-peak positions are to be measured with sufficient accuracy at
medium resolution, the Gaussian shape of the recorded traces must not be
distorted. Since simple repetitive scanning ~ see Figure 7 - very much
improves the recorded shapes of mass-peaks, we think that facilities for
"instant peak-matching' will soon, be commercially available.
Even if such instruments, gave only several alternative combinations
fox an elementary composition, it may be that all but one of these could
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a* 10 sweeps
FIGURE 7
Intensity
* . bt 100 sweeps %
ft
ta/tt 255
.
-
50 B?/e 256
100 08
time
n/e 257
t
/ *
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Figure 7* Mass spectrum of. PbF.f+ ion a) after 10 aweena, b) after 100 sweeps. Medium resolution mass spectrometer (iJf8-9000) used.
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be eliminated from a consideration of other available information. Data which lead to the determination of elementary composition come
under the heading of positive information, but do not, of course, allow identification of a given compound. At the same time, a knowledge of the molecular formula provides the desired 'platform1 for further work, which begins in the library* Moreover, this approach conforms to that of 'classical' organic chemistry in organizing the large amount of data which may be ob tained in the future from more refined mass spectrometry linked with more sensitive versions of other identification methods as listed in Figure 1.
Finally, in spite of our title, it is perhaps worthwhile to ask whether in the general sense, 'positive identification' is ever possible in ana lytical chemistry. References (1) Sweeley, C.G., Elliot, Y/.H., Fries, I,, and Ryhage, R,, Anal.Ohem. ,8,
1539 (1966). (2) Sohomburg, G, and Henneberg, D#, Chromatographia J_, 23 (1968). (3) Harnmar, C.G., Holmstedt, B., and Ryhage, R., Experientia 24, 98 (1968). (4) McPadden, W.H, and Day, E.A., Anal.Chem, 3>6, 2362 (1964). (5) Littlewood, A.B., Ghromatographia _1_, 37 (1968).
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