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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Maintaining pronounced proton transportation of solid oxides prepared with a sintering additive
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Maintaining pronounced proton transportation of solid oxides prepared with a sintering additive

机译:维持用烧结添加剂制备的固体氧化物的明显质子输送

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摘要

Proton-conducting electrolytes (PCEs) have led to significant advances in the fields of solid-state ionics, energy conversion and high-temperature electrochemistry, providing the basis of various solid oxide devices that demonstrate outstanding performance and efficiency. Although the proton transport of PCEs has an undeniable advantage over the oxygen-ion transport of conventional complex oxide approaches, the refractory nature of these materials presents significant challenges for their fabrication in the form of thin films. In order to mitigate sintering conditions for multilayered PCE structures (single cells), various additives have been used. However, other fundamental and technological issues arise in this connection, including the localization of such introduced impurities near grain boundaries resulting in blocked proton transportation. The present article reports a general strategy for effectively sintering PCE-based refractory materials while maintaining their hydrogen transportation, using a BaSn0.8Sc0.2O3-delta model compound due to its significant water uptake even at high levels of acceptor doping. This strategy, as shown in a comprehensive analysis of corresponding experimental results, proposes a CuO sintering additive in low amounts, sufficient for achieving a dense state with no adverse effects on protonic conduction. The reported findings can be applied for scalable preparation of gas tight PCEs at reduced sintering temperatures for various electrochemical purposes.
机译:质子导电电解质(PCE)在固态离子学、能量转换和高温电化学领域取得了重大进展,为各种表现出优异性能和效率的固体氧化物器件奠定了基础。尽管PCE的质子传输比传统复合氧化物方法的氧离子传输具有不可否认的优势,但这些材料的难熔性质对其薄膜制备提出了重大挑战。为了减轻多层PCE结构(单电池)的烧结条件,使用了各种添加剂。然而,在这方面还出现了其他基本和技术问题,包括这种引入的杂质在晶界附近的局部化,导致质子传输受阻。本文报告了一种利用BaSn0在保持氢传输的同时有效烧结PCE基耐火材料的总体策略。8Sc0。2O3δ模型化合物,因为即使在高受主掺杂水平下,它也具有显著的吸水性。如对相应实验结果的综合分析所示,该策略提出了少量的CuO烧结添加剂,足以实现致密状态,且不会对质子传导产生不利影响。报告的研究结果可用于在较低的烧结温度下制备气密性PCE,用于各种电化学用途。

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