A self-assembled nanoflower-like Ni5P4@NiSe2 heterostructure with hierarchical pores triggering high-efficiency electrocatalysis for Li–O2 batteries

Xue Han, Yanjie Liang, Lanling Zhao, Jun Wang, Qing Xia, Deyuan Li, Yao Liu, Zhaorui Zhou, Yuxin Long, Yebing Li, Yiming Zhang, S. Chou
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引用次数: 10

Abstract

The remarkably high theoretical energy densities of Li–O2 batteries have triggered tremendous efforts for next-generation conversion devices. Discovering efficient oxygen reduction reaction and oxygen evolution reaction (ORR/OER) bifunctional catalysts and revealing their internal structure-property relationships are crucial in developing high-performance Li–O2 batteries. Herein, we have prepared a nanoflower-like Ni5P4@NiSe2 heterostructure and employed it as a cathode catalyst for Li–O2 batteries. As expected, the three-dimensional biphasic Ni5P4@NiSe2 nanoflowers facilitated the exposure of adequate active moieties and provide sufficient space to store more discharge products. Moreover, the strong electron redistribution between Ni5P4 and NiSe2 heterojunctions could result in the built-in electric fields, thus greatly facilitating the ORR/OER kinetics. Based on the above merits, the Ni5P4@NiSe2 heterostructure catalyst improved the catalytic performance of Li–O2 batteries and holds great promise in realizing their practical applications as well as inspiration for the design of other catalytic materials.
一种自组装的纳米花样Ni5P4@NiSe2异质结构,具有分层孔,可触发Li-O2电池的高效电催化
锂氧电池的理论能量密度非常高,这引发了下一代转换设备的巨大努力。发现高效氧还原反应和析氧反应(ORR/OER)双功能催化剂并揭示其内部结构-性能关系是开发高性能锂氧电池的关键。在此,我们制备了一种纳米花状Ni5P4@NiSe2异质结构,并将其用作Li-O2电池的阴极催化剂。正如预期的那样,三维双相Ni5P4@NiSe2纳米花促进了足够的活性成分的暴露,并提供了足够的空间来储存更多的放电产物。此外,Ni5P4和NiSe2异质结之间强烈的电子重分布会产生内建电场,从而极大地促进了ORR/OER动力学。基于以上优点,Ni5P4@NiSe2异质结构催化剂提高了Li-O2电池的催化性能,在实现Li-O2电池的实际应用方面具有很大的前景,同时也为其他催化材料的设计提供了灵感。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
7.40
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