45
11 40 11 40
(V) (IV)PMo V O e PMo V O
Ⅰ /Ⅰ ’
Table 2 reveals that [PyPS]
4
PMo
11
VO
40
has stronger oxidability than [PyPS]
6
PW
9
V
3
O
40
and
[PyPS]
4
PW
11
VO
40
,
while the tri-substituted compound, [PyPS]
6
PW
9
V
3
O
40
, has stronger oxidability
than the mono-substituted one, [PyPS]
4
PW
11
VO
40
. In other words, it can be concluded that when it
comes to the vanadium-substituted molybdophosphorates and tungstophosphorates, it is the POM
component elements that mainly determine the oxidability rather than the number of the substituted
atoms, as [PyPS]
4
PMo
11
VO
40
has stronger oxidability than [PyPS]
6
PW
9
V
3
O
40
and [PyPS]
4
PW
11
VO
40
,
while there are more vanadium atoms in [PyPS]
6
PW
9
V
3
O
40
.
4. Conclusions
In this paper, we have mainly reported the synthesis and electrochemical performance of a series of
POM-type gels, [PyPS]
6
PW
9
V
3
O
40
, [PyPS]
4
PW
11
VO
40
and [PyPS]
4
PMo
11
VO
40
. The relationship
between the component elements of the vanadium-substituted polyoxometalate gels and their
electrochemical performance has been investigated. The results show that [PyPS]
4
PMo
11
VO
40
has
stronger oxidability than [PyPS]
6
PW
9
V
3
O
40
and [PyPS]
4
PW
11
VO
40
. They can be promising materials
for supercapacitors.
Acknowledgements
This work was supported by the Liaoning Provincial Natural Science Foundation of China
(201602404) and the Scientific Research Foundation of Liaoning Institute of Science and
Technology (RXYJ2015001).
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