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异质结构CoP/FeP纳米片的界面工程作为用于碱性水分解的双功能电催化剂

Interfacial engineering of heterostructured CoP/FeP nanoflakes as bifunctional electrocatalyts toward alkaline water splitting.

作者信息

Zhang Yu, Li Zhiyong, He Siqi, Qiao Yanxin, Yuan Aihua, Wu Jianchun, Zhou Hu

机构信息

School of Materials Science and Engineering, Jiangsu University of Science and Technology, Zhenjiang 212003, PR China.

School of Environmental and Chemical Engineering, Jiangsu University of Science and Technology, Zhenjiang 212003, PR China.

出版信息

J Colloid Interface Sci. 2025 Feb;679(Pt B):20-29. doi: 10.1016/j.jcis.2024.10.084. Epub 2024 Oct 18.

Abstract

Exploring highly-effective and nonprecious electrocatalysts for hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) is urgent and challenging for developing the hydrogen economy. Interface engineering is a feasible approach for regulating the surface electronic distribution, thereby promoting the catalytic performance. Herein, the CoP/FeP heterostructure is fabricated via the oxidation and phosphating treatments of Fe-decorated Ni(OH) nanoflakes. The hierarchically porous nanoflakes can expose more active species, while the formation of CoP/FeP heterojunctions have provided extra catalytic active sites and accelerated the charge transfer process. Theoretical calculations reveal that the interfacial electron coupling between CoP and FeP in the heterostructure has promoted the adsorption of intermediate species on catalytic sites, thereby decreasing the Gibbs free energy during the catalysis. The as-fabricated CoP/FeP catalyst requires small overpotentials of 190 mV and 280 mV to realize a current density of 10 mA cm for alkaline HER and OER, respectively. The electrolytic cell with CoP/FeP as catalyst needs a voltage of 1.61 V to reach 10 mA cm, and can run stably for over 25 h. The present study highlights a superiority of interfacial engineering to construct efficient electrocatalysts for water electrolysis.

摘要

开发高效且非贵金属的析氢反应(HER)和析氧反应(OER)电催化剂对于发展氢能经济而言既紧迫又具有挑战性。界面工程是一种调节表面电子分布从而提升催化性能的可行方法。在此,通过对铁修饰的氢氧化镍纳米片进行氧化和磷化处理制备了CoP/FeP异质结构。分层多孔的纳米片能够暴露出更多活性物种,而CoP/FeP异质结的形成提供了额外的催化活性位点并加速了电荷转移过程。理论计算表明,异质结构中CoP与FeP之间的界面电子耦合促进了中间物种在催化位点上的吸附,从而降低了催化过程中的吉布斯自由能。所制备的CoP/FeP催化剂在碱性HER和OER中分别实现10 mA cm电流密度所需的过电位仅为190 mV和280 mV。以CoP/FeP作为催化剂的电解槽达到10 mA cm需要1.61 V的电压,并且能够稳定运行超过25小时。本研究突出了界面工程在构建高效水电解电催化剂方面的优势。

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