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用于在光磁场下高效水分解的电催化剂中的光热-磁协同效应

Photothermal-Magnetic Synergistic Effects in an Electrocatalyst for Efficient Water Splitting under Optical-Magnetic Fields.

作者信息

Ma Yibing, Zhou Yaya, Wang Chenglong, Gao Bing, Li Jialing, Zhu Miao, Wu Hao, Zhang Chao, Qin Yiqiang

机构信息

National Laboratory of Solid State Microstructures and Collaborative Innovation Center of Advanced Microstructures, Nanjing University, Nanjing, 210093, China.

College of Engineering and Applied Sciences, Nanjing University, Nanjing, 210093, China.

出版信息

Adv Mater. 2023 Oct;35(41):e2303741. doi: 10.1002/adma.202303741. Epub 2023 Sep 5.

Abstract

The slow oxygen evolution reaction (OER) limits water splitting, and external fields can help improve it. However, the effect of a single external field on the OER is limited and unsatisfactory. Furthermore, the mechanism by which external fields improve the OER is unclear, particularly in the presence of multiple fields. Herein, a strategy is proposed for enhancing the OER activity of a catalyst using the combined effect of an optical-magnetic field, and the mechanism of catalytic activity enhancement is studied. Under the optical-magnetic field, Co O reduces the resistance by increasing the catalyst temperature. Meanwhile, CoFe O further reduces the resistance via the negative magnetoresistance effect, thus decreasing the resistance from 16 to 7.0 Ω. Additionally, CoFe O acts as a spin polarizer, and electron polarization results in a parallel arrangement of oxygen atoms, which increases the kinetics of the OER under the magnetic field. Benefiting from the optical and magnetic response design, Co O /CoFe O @Ni foam requires an overpotential of 172.4 mV to reach a current density of 10 mA cm under an optical-magnetic field, which is significantly higher than those of recently reported state-of-the-art transition-metal-based catalysts.

摘要

缓慢的析氧反应(OER)限制了水分解,而外部场可以帮助改善这一情况。然而,单个外部场对OER的影响有限且不尽人意。此外,外部场改善OER的机制尚不清楚,尤其是在存在多个场的情况下。在此,提出了一种利用光磁场的联合效应来提高催化剂OER活性的策略,并研究了催化活性增强的机制。在光磁场下,CoO通过提高催化剂温度来降低电阻。同时,CoFeO通过负磁阻效应进一步降低电阻,从而将电阻从16Ω降至7.0Ω。此外,CoFeO充当自旋极化器,电子极化导致氧原子平行排列,这增加了磁场下OER的动力学。受益于光磁响应设计,在光磁场下,CoO/CoFeO@泡沫镍达到10 mA cm电流密度时需要172.4 mV的过电位,这明显高于最近报道的最先进的过渡金属基催化剂。

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