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富含地球元素金属的介孔三元氮化物作为析氧电催化剂

Mesoporous Ternary Nitrides of Earth-Abundant Metals as Oxygen Evolution Electrocatalyst.

作者信息

Saad Ali, Shen Hangjia, Cheng Zhixing, Arbi Ramis, Guo Beibei, Hui Lok Shu, Liang Kunyu, Liu Siqi, Attfield John Paul, Turak Ayse, Wang Jiacheng, Yang Minghui

机构信息

Ningbo Institute of Materials Technology and Engineering, Chinese Academy of Sciences, Ningbo, 315201, Zhejiang Province, People's Republic of China.

Department of Engineering Physics, McMaster University, Hamilton, L8S 4L7, Canada.

出版信息

Nanomicro Lett. 2020 Mar 26;12(1):79. doi: 10.1007/s40820-020-0412-8.

Abstract

As sustainable energy becomes a major concern for modern society, renewable and clean energy systems need highly active, stable, and low-cost catalysts for the oxygen evolution reaction (OER). Mesoporous materials offer an attractive route for generating efficient electrocatalysts with high mass transport capabilities. Herein, we report an efficient hard templating pathway to design and synthesize three-dimensional (3-D) mesoporous ternary nickel iron nitride (Ni3FeN). The as-synthesized electrocatalyst shows good OER performance in an alkaline solution with low overpotential (259 mV) and a small Tafel slope (54 mV dec), giving superior performance to IrO and RuO catalysts. The highly active contact area, the hierarchical porosity, and the synergistic effect of bimetal atoms contributed to the improved electrocatalytic performance toward OER. In a practical rechargeable Zn-air battery, mesoporous NiFeN is also shown to deliver a lower charging voltage and longer lifetime than RuO. This work opens up a new promising approach to synthesize active OER electrocatalysts for energy-related devices.

摘要

随着可持续能源成为现代社会的主要关注点,可再生和清洁能源系统需要用于析氧反应(OER)的高活性、稳定且低成本的催化剂。介孔材料为生成具有高质量传输能力的高效电催化剂提供了一条有吸引力的途径。在此,我们报道了一种高效的硬模板法,用于设计和合成三维(3-D)介孔三元镍铁氮化物(Ni3FeN)。所合成的电催化剂在碱性溶液中表现出良好的OER性能,过电位低(259 mV)且塔菲尔斜率小(54 mV dec),性能优于IrO和RuO催化剂。高活性接触面积、分级孔隙率以及双金属原子的协同效应有助于提高对OER的电催化性能。在实际的可充电锌空气电池中,介孔NiFeN也显示出比RuO更低的充电电压和更长的寿命。这项工作为合成用于能源相关器件的活性OER电催化剂开辟了一条新的有前景的途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ae98/7770804/e20980dd23b5/40820_2020_412_Fig2_HTML.jpg

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