Pressure-directed mixed ionic–electronic to pure electronic conduction transition and enhanced grain boundary conductivity in solid electrolyte CdMoO4

Author:

Qin Tianru123,Duan Susu2,Yue Donghui13,Li Jianfu4,Wang Qinglin2ORCID,Wang Fangxu5,Chen Weiwei1,Wang Xiaoli4,Zheng Youjin1ORCID,Gao Chunxiao6ORCID

Affiliation:

1. Heilongjiang Province Key Laboratory of Superhard Materials, Department of Physics, Mudanjiang Normal University, Mudanjiang 157012, China

2. Shandong Key Laboratory of Optical Communication Science and Technology, School of Physics Science & Information Technology, Liaocheng University, Liaocheng 252059, China

3. Center for High Pressure Science & Technology Advanced Research, Beijing 100094, China

4. School of Physics and Electronic Information, Yantai University, Yantai 264005, China

5. School of Physics and Electronic Engineering, Linyi University, Linyi 276005, China

6. State Key Laboratory of Superhard Materials, Jilin University, Changchun 130012, China

Abstract

Scheelite ABO4-type solid electrolytes have attracted much attention for potential applications as oxygen ionic conductors of solid oxide fuel cells. Herein, a systematic study was carried out on the electrical transport properties of CdMoO4 under high pressure by impedance spectroscopy measurements and theoretical calculations. The sequence of structural phase transitions at pressures was determined as I41/ a → C2/ c → P21/ c by the Crystal structure AnaLYsis by Particle Swarm Optimization (CALYPSO) method. A pressure-induced conduction transition from mixed ionic–electronic to pure electronic conduction was observed. Below 25.6 GPa, O2− ions play a major role in the electrical transport process. The microscopic transport mechanism was analyzed with grain boundary energies and migration energy barriers. Above 26.9 GPa, the grain boundary response was weakened significantly after a pressure cycle, and the grain boundary conductivity increased by about three times due to pressure. These results provide guidelines for the optimization and application of scheelite ABO4-based oxygen ionic conductors in solid oxide fuel cells.

Funder

Heilongjiang Provincial Education Department Project Subsidy

Natural Science Foundation of Heilongjiang Province

Science and Technology Plan of Youth Innovation Team for Universities of Shandong Province

Introduction and Cultivation Plan of Youth Innovation Talents for Universities of Shandong Province

National Natural Science Foundation of China

Open Project of Shandong Key Laboratory of Optical Communication Science and Technology

Open Project of State Key Laboratory of Superhard Materials

Research Funding of Mudanjiang Normal University

Research Funding of Liaocheng University

Publisher

AIP Publishing

Subject

Physics and Astronomy (miscellaneous)

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