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Porous spinel-type transition metal oxide nanostructures as emergent electrocatalysts for oxygen reduction reactions

机译:多孔spinel-type过渡金属氧化物纳米结构作为紧急electrocatalysts氧还原反应

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摘要

Porous spinel-type transition metal oxide (PS-TMO) nanocatalysts comprising two kinds of metal (denoted as A(x)B(3-x)O(4), where A, B = Co, Ni, Zn, Mn, Fe, V, Sm, Li, and Zn) have emerged as promising electrocatalysts for oxygen reduction reactions (ORRs) in energy conversion and storage systems (ECSS). This is due to the unique catalytic merits of PS-TMOs (such as p-type conductivity, optical transparency, semiconductivity, multiple valence states of their oxides, and rich active sites) and porous morphologies with great surface area, low density, abundant transportation paths for intermediate species, maximized atom utilization and quick charge mobility. In addition, PS-TMOs nanocatalysts are easily prepared in high yield from Earth-abundant and inexpensive metal precursors that meet sustainability requirements and practical applications. Owing to the continued developments in the rational synthesis of PS-TMOs nanocatalysts for ORRs, it is utterly imperative to provide timely updates and highlight new advances in this research area. This review emphasizes recent research advances in engineering the morphologies and compositions of PS-TMOs nanocatalysts in addition to their mechanisms, to decipher their structure-activity relationships. Also, the ORR mechanisms and fundamentals are discussed, along with the current barriers and future outlook for developing the next generation of PS-TMOs nanocatalysts for large-scale ECSS.
机译:多孔spinel-type过渡金属氧化物(PS-TMO)nanocatalysts由两种金属(表示为(x) B(法)O(4),在A, B =有限公司镍、锌、锰、铁、V、Sm、李和锌)已成为有前途的electrocatalysts氧气减少反应(orr)在能量转换和存储系统(ecs)。催化的优点PS-TMOs(例如p型电导率、光学透明,semiconductivity、多价的他们的氧化物,丰富活跃的网站)和多孔形态以极大的表面积,低密度,丰富的运输路径中间物种,最大化原子利用率和快速充电的流动性。nanocatalysts很容易准备的高收益从地球上充足的和廉价的金属前兆,满足可持续发展的要求和实际应用。持续发展合理的合成的PS-TMOs nanocatalysts奥尔,完全必须提供及时更新和强调在这个研究领域的新进展。本文强调最近的研究进展在工程的形态和成分的PS-TMOs nanocatalysts除了他们机制,解读他们的结构活性的关系。基本面因素进行了讨论,以及当前壁垒和未来的前景发展下一代PS-TMOsnanocatalysts大规模ecs。

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