The reaction between manganese dioxide and potassium permanganate — John Shaqi
The reaction between manganese dioxide and potassium permanganateHopkins, Arthur John
Science
The reaction between manganese dioxide and potassium permanganate
Hopkins, Arthur John
Manganese; Thesis (Ph. D.)
No definite conclusions can be drawn from these neutralization
experiments since it is well known that manganese oxides prepared
as were those used in these experiments always contain some, though
probably not a constant quantity of alkali. It is stated by Bemmelen[9]
that manganese dioxide decomposed the salts of the alkalies with
liberation of acid.
[9] J. für Prak. Ch. (2) 23, 324-379.
The Stability of Manganese Dioxide.
Having found in the course of the work already described that
manganese dioxide prepared in the wet way is much less stable than was
supposed, it was decided to make some experiments upon the spontaneous
decomposition which it undergoes. To this end a fresh sample was
prepared in the following manner.
10 grams of potassium permanganate were dissolved in 500 c.c. of
distilled water and the solution allowed to settle for one day. The
liquid was then filtered through glass wool, heated to 65°C. and
treated with 320 c.c. N/10 nitric acid, having also a temperature
of 65°C. 20.5 grams of manganous sulphate dissolved in 2.5 litres of
water heated to 65°C, were now added, with stirring, to the acidified
solution of potassium permanganate. The precipitate was allowed to
settle and the supernatant liquid which still retained the permanganate
color, decanted. The residue was then treated with water, stirred and
allowed to settle. The water was decanted and the oxide filtered. The
filter used consisted of two platinum cones between which was placed a
small paper filter which did not quite reach to the edge of the outer
cone. This filter was placed in the bottom of a glass funnel and the
oxide poured upon it. The oxide was repeatedly washed with distilled
water and then transferred to a porous plate. It was afterwards
heated for several hours to a temperature of 65°C. At this temperature
it was found impracticable to bring the oxide to a constant weight,
but this fact was no serious obstacle in the way of the subsequent
work since it was only desired to ascertain what changes take place in
the ratio of the manganese to the available oxygen. The manganese was
determined by the method of Gibbs and the available oxygen by oxalic
acid and potassium permanganate. An analysis of the oxide made shortly
after its preparation in the manner described, gave
{51.98 percent}
Manganese { } = 51.86 pr. ct.
{51.74 ” }
{14.836 percent}
Oxygen { } = 14.837 ”
{14.839 ” }
showing a ratio of manganese to available oxygen of 1.018 : 1.000.
The above analysis was made May 1, 1892. The oxide was then placed in
a glass-stoppered weighing bottle and allowed to stand until November.
An analysis made on the tenth day of the latter month gave a ratio of
manganese to available oxygen of
1.198 : 1.000
corresponding very closely to a composition MnO·5MnO₂, in which the
calculated ratio is
1.200 : 1.000
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