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◆ Chemical science2026-08-05

Interstitial oxide-ion conduction with unconventional polyhedral units in Bi2-x Te1+x O5+x/2.

Lu Liang, Jinxin Ge, Hankun Xu, Yue Zhu, Jie Chen, Zhijian Tan, Changjian Li, Xiaohui Li, Kun Lin, Xiaojun Kuang, Qiang Li, Xianran Xing

原始摘要(英文原文)· Original abstract
Interstitial oxide-ion conductors are promising candidates for intermediate-temperature solid oxide fuel cells because of low migration barriers. However, such conductors with cation-centered polyhedral frameworks are relatively rigid and afford insufficient lattice free volume for the migration of interstitial oxygen. Herein, we report an interstitial oxide-ion conductor in layered Bi1.9Te1.1O5.05, which exhibits a conductivity of 1.41 × 10-3 S cm-1 at 650 °C, comparable to those of advanced oxide-ion conductors. The average structure shows that stereochemically active lone-pair electrons of Bi3+ and Te4+ induce highly distorted, non-cation-centered coordination units, thereby generating sufficient lattice free volume. Neutron diffraction coupled with maximum entropy method analysis determines the location and concentration of interstitial oxygen atoms, which are stabilized through coordination with adjacent Te atoms. The incorporation of interstitial oxygen fundamentally alters the local Te environment, driving a transition from exclusively three-coordinated units to a diverse coexistence of three-, four-, and five-coordinated units. Concurrently, neighboring lattice oxygen atoms are displaced by interstitial oxygen, giving rise to pronounced local structural relaxation and enhanced lattice flexibility that are conducive to interstitial oxide-ion transport. This work provides new insights into the design of interstitial oxide-ion conductors beyond conventional polyhedral framework systems.
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Interstitial oxide-ion conduction with unconventional polyhedral units in Bi2-x Te1+x O5+x/2. — 科研速览 Science Skim