Thermochemical Expansion and Protonic and Electronic Hole Conductivity of Grain Interior and Grain Boundaries in 10 Mole% Y‐Substituted SrZrO3

Author:

Jiang Lulu1,Norby Truls12ORCID,Han Donglin1345ORCID

Affiliation:

1. College of Energy Soochow University No 1 Shizi Street, Gusu District Suzhou 215006 China

2. Centre for Materials Science and Nanotechnology Department of Chemistry University of Oslo Gaustadalléen 21 NO-0349 Oslo Norway

3. Provincial Key Laboratory for Advanced Carbon Materials and Wearable Energy Technologies Soochow University No 1 Shizi Street, Gusu District Suzhou 215006 China

4. Light Industry Institute of Electrochemical Power Sources Shahu Science & Technology Innovation Park Suzhou 215638 China

5. Key Laboratory of Core Technology of High Specific Energy Battery and Key Materials for Petroleum and Chemical Industry Soochow University Suzhou 215006 China

Abstract

AbstractProton conducting acceptor‐doped SrZrO3 has a history as long as that of BaZrO3, but has attracted less interest. Inspired by its higher transport number of ionic conduction in wet oxygen revealed by our recent work, we here explore further aspects of doped SrZrO3 as electrolyte in proton ceramic electrochemical cells. In‐situ high temperature XRD (HT‐XRD) analysis of SrZr0.9Y0.1O3−δ (SZY10) indicated an anisotropic chemical expansion of hydration, stronger along the b than the a direction, and negative in the c direction. A systematic electromotive force (EMF) and impedance spectroscopy study as a function of and allowed determination of partial conductivities of electron holes and ions (mainly protons) in bulk (grain interior) and grain boundaries. Enthalpies and preexponentials were determined and interpreted for bulk and grain boundary partial conductivities based on defect chemistry and a brick layer model. The hole conductivity in bulk is modest and ensures high ionic transport numbers in oxidizing atmospheres, while grain boundaries exhibit lower ionic transport numbers from a relatively higher hole conductivity attributed primarily to tunnelling past the deepest part of the space charge region. Y‐doped SrZrO3 (SZY) materials exhibit lower proton conductivities but excel over Y‐doped BaZrO3 (BZY) in terms of thermal expansion compatibility with electrode materials and higher ionic transport numbers in oxidizing atmospheres and may hence be candidates for functional layers between BZY‐based electrolytes and positrodes in proton ceramic electrochemical cells.

Funder

Natural Science Foundation of Jiangsu Province

Publisher

Wiley

Subject

General Energy,General Materials Science,General Chemical Engineering,Environmental Chemistry

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