zn掺杂增强质子陶瓷燃料电池La1.2Sr0.8NiO4+δ阴极电催化性能

IF 4.6 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Wang Jiang , Yuxuan Wei , Chujia Jin , Fang Wu , Jie Hou
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引用次数: 0

摘要

调节k2nif4型材料的b位原子环境提供了一种有前途的策略来定制电催化性能。将Zn掺入La1.2Sr0.8NiO4+δ (LSNZ)中,形成额外的氧空位,得到高活性的la1.2 sr0.8 ni0.8 zn0.2 2o4 +δ (LSNZ)阴极。该电池在700°C下的功率密度为1330 mW cm - 2,极化电阻为0.081 Ω cm2,大大超过了lsnol电池和之前报道的ln2nio4基阴极。这种显著的性能归因于LSNZ的氧迁移和质子化增强,正如电导率弛豫测量所证实的那样,这有助于更快的电极反应动力学。LSNZ结合了优异的功率输出、优异的极化性能和耐用性,成为质子陶瓷燃料电池极具竞争力的阴极候选材料。本研究证明了锌掺杂在修饰k2nif4相关结构的b位原子环境以设计高性能电极材料方面的有效性,为推进相关领域电催化材料的设计提供了有价值的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancing La1.2Sr0.8NiO4+δ cathode electrocatalysis for protonic ceramic fuel cells with Zn-doping
Modulating B-site atomic environment in K2NiF4-type material offers a promising strategy to tailor electrocatalytic properties. Herein, Zn is incorporated into La1.2Sr0.8NiO4+δ (LSNO) to create additional oxygen vacancies, resultantly developing highly-active La1.2Sr0.8Ni0.8Zn0.2O4+δ (LSNZ) cathode. The cell NiO-BaZr0.1Ce0.7Y0.2O3-δ| BaZr0.1Ce0.7Y0.2O3-δ|LSNZ achieves an outstanding power density of 1330 mW cm−2 with the polarization resistance of 0.081 Ω cm2 at 700 °C, significantly surpassing not only LSNO-based cell but also previously reported Ln2NiO4-based cathodes. This remarkable performance is attributed to the enhanced oxygen migration and protonation of LSNZ, as confirmed by electrical conductivity relaxation measurements, which facilitate faster electrode reaction kinetics. Combining the superior power output, excellent polarization properties, and robust durability, LSNZ emerges as a highly competitive cathode candidate for protonic ceramic fuel cells. This work demonstrates the effectiveness of Zn-doping in modifying B-site atomic environment of K2NiF4-related structures to design high-performance electrode materials, offering valuable insights for advancing electrocatalytic material design in related fields.
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来源期刊
Materials Science and Engineering: B
Materials Science and Engineering: B 工程技术-材料科学:综合
CiteScore
5.60
自引率
2.80%
发文量
481
审稿时长
3.5 months
期刊介绍: The journal provides an international medium for the publication of theoretical and experimental studies and reviews related to the electronic, electrochemical, ionic, magnetic, optical, and biosensing properties of solid state materials in bulk, thin film and particulate forms. Papers dealing with synthesis, processing, characterization, structure, physical properties and computational aspects of nano-crystalline, crystalline, amorphous and glassy forms of ceramics, semiconductors, layered insertion compounds, low-dimensional compounds and systems, fast-ion conductors, polymers and dielectrics are viewed as suitable for publication. Articles focused on nano-structured aspects of these advanced solid-state materials will also be considered suitable.
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