Issue 1, 2016

Synthesis and conductive performance of indium-substituted ternary heteropoly acids with Keggin structures

Abstract

Two new high-proton conductors, indium-substituted ternary heteropoly acids with Keggin structures, H4[In(H2O)PW11O39]·11H2O and H5[In(H2O)SiW11O39]·8H2O, have been synthesized and characterized using elemental analysis, IR, UV, XRD and TG-DTA. Their proton conductivities were measured using electrochemical impedance spectroscopy (EIS), and the results indicate that H4[In(H2O)PW11O39]·11H2O and H5[In(H2O)SiW11O39]·8H2O are solid high-proton conductors with a conductivity of 2.60 × 10−4 S cm−1 and 5.25 × 10−4 S cm−1, respectively, at 18 °C and 80% relative humidity (RH). Their activation energies are 33.40 kJ mol−1 and 28.52 kJ mol−1, which suggests that the mechanism of proton conduction is the vehicle mechanism. In the range of the measured temperatures, the conductivity of both heteropoly acids increases with higher temperatures.

Graphical abstract: Synthesis and conductive performance of indium-substituted ternary heteropoly acids with Keggin structures

Article information

Article type
Paper
Submitted
03 Jul 2015
Accepted
10 Nov 2015
First published
24 Nov 2015

Dalton Trans., 2016,45, 271-275

Synthesis and conductive performance of indium-substituted ternary heteropoly acids with Keggin structures

X. Wu, T. Huang, Q. Wu and L. Xu, Dalton Trans., 2016, 45, 271 DOI: 10.1039/C5DT02541A

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