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通过可控构建FeNi/C纳米棒促进析氧反应

Boosting the Oxygen Evolution Reaction by Controllably Constructing FeNi/C Nanorods.

作者信息

Yu Xu, Pan Zhiqiang, Zhao Zhixin, Zhou Yuke, Pei Chengang, Ma Yifei, Park Ho-Seok, Wang Mei

机构信息

School of Chemistry and Chemical Engineering, Yangzhou University, Yangzhou 225009, China.

State Key Laboratory of Quantum Optics and Quantum Optics Devices, Institute of Laser Spectroscopy, Collaborative Innovation Center of Extreme Optics, Shanxi University, Taiyuan 030006, China.

出版信息

Nanomaterials (Basel). 2022 Jul 22;12(15):2525. doi: 10.3390/nano12152525.

Abstract

Transition bimetallic alloy-based catalysts are regarded as attractive alternatives for the oxygen evolution reaction (OER), attributed to their competitive economics, high conductivity and intrinsic properties. Herein, we prepared FeNi/C nanorods with largely improved catalytic OER activity by combining hydrothermal reaction and thermal annealing treatment. The temperature effect on the crystal structure and chemical composition of the FeNi/C nanorods was revealed, and the enhanced catalytic performance of FeNi/C with an annealing temperature of 400 °C was confirmed by several electrochemical tests. The outstanding catalytic performance was assigned to the formation of bimetallic alloys/carbon composites. The FeNi/C nanorods showed an overpotential of 250 mV to afford a current density of 10 mA cm and a Tafel slope of 84.9 mV dec, which were both smaller than the other control samples and commercial IrO catalysts. The fast kinetics and high catalytic stability were also verified by electrochemical impendence spectroscopy and chronoamperometry for 15 h. This study is favorable for the design and construction of bimetallic alloy-based materials as efficient catalysts for the OER.

摘要

过渡双金属合金基催化剂因其具有竞争力的经济性、高导电性和固有特性,被视为析氧反应(OER)颇具吸引力的替代催化剂。在此,我们通过水热反应和热退火处理相结合的方法,制备出具有大幅提升的催化OER活性的FeNi/C纳米棒。揭示了温度对FeNi/C纳米棒晶体结构和化学成分的影响,并通过多项电化学测试证实了退火温度为400℃时FeNi/C的催化性能增强。出色的催化性能归因于双金属合金/碳复合材料的形成。FeNi/C纳米棒在电流密度为10 mA cm时的过电位为250 mV,塔菲尔斜率为84.9 mV dec,这两者均小于其他对照样品和商业IrO催化剂。电化学阻抗谱和计时电流法在15小时内的测试也验证了其快速动力学和高催化稳定性。该研究有利于设计和构建双金属合金基材料作为高效的OER催化剂。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5140/9332686/98d70b79164e/nanomaterials-12-02525-g001.jpg

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