Legal Chemistry: A Guide to the Detection of Poisons, Examination of Tea, Stains, Etc., as Applied to Chemical Jurisprudence — John Shaqi
Legal Chemistry: A Guide to the Detection of Poisons, Examination of Tea, Stains, Etc., as Applied to Chemical JurisprudenceNaquet, Alfred
Science
Legal Chemistry: A Guide to the Detection of Poisons, Examination of Tea, Stains, Etc., as Applied to Chemical Jurisprudence
Naquet, Alfred
Chemistry, Forensic; Poisons
The organic matter to be decomposed is heated with about one-fifth of
its weight of concentrated sulphuric acid, the complete solution of the
materials being thus accomplished. The excess of acid is next removed by
heating until a spongy carbonaceous mass remains. The further treatment
of this residue depends upon the nature of the poison supposed to be
present. If the sulphate of the suspected poison is a soluble and stable
compound, the residue is directly treated with water; if, on the
contrary, there is reason to think that the sulphate has suffered
decomposition, the mass is taken up with dilute nitric acid; if,
finally, the presence of arsenic is suspected, the residue is moistened
with nitric acid, in order to convert this body into arsenic acid. The
acid is afterwards removed by evaporation, the well pulverized residue
boiled with distilled water, and the solution then filtered.
This method, when applied in the detection of arsenic, is objectionable
in that the carbonaceous residue, in contact with sulphuric acid, almost
invariably contains sulphurous acid, detected by means of permanganate
of potassa. This acid, being reduced in the presence of hydrogen, would
cause the formation of insoluble sulphide of arsenic, and in this way
prevent the detection of small amounts of arsenic by the use of Marsh's
apparatus. _M. Gaultier de Claubry_, indeed, states that he has not been
able to detect the presence of sulphurous acid in the carbonaceous
residue; but one affirmative result would, in this case, outweigh twenty
negative experiments. A further objection to this process consists in
the fact that the materials to be destroyed almost always contain
chlorides, which, in presence of sulphuric acid and an arsenical
compound, might determine the formation of chloride of arsenic, a
volatile body, and therefore one easily lost. This difficulty is
doubtless of a less serious nature than the preceding, as the operation
can be performed in a closed vessel provided with a receiver which
admits of the condensation of the evolved vapors; but even then the
process would be prolonged. The above method is still again
objectionable on account of its too limited application, it being
serviceable almost exclusively in cases where the poisoning has been
caused by arsenic, for, if applied in other instances, a subsequent
treatment would be necessary in order to redissolve the metal separated
from its decomposed sulphate.
BY MEANS OF NITRATE OF POTASSA.
This method was formerly executed as follows: Nitrate of potassa was
fused in a crucible, and the substances to be destroyed added in small
portions to the fused mass. The organic matter soon acquired a pure
white color; owing, however, to the imperfect admixture of the organic
matter with the salt used for its decomposition, it was necessary to
take a large excess of the latter.
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