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石墨炔增强的多功能铜/镍双金属磷化物-石墨炔杂化纳米结构作为高效析水电催化剂

Graphdiyne reinforced multifunctional Cu/Ni bimetallic Phosphides-Graphdiyne hybrid nanostructure as high performance electrocatalyst for water splitting.

作者信息

Gao Juan, Li Yaxin, Yu Xin, Ma Yurong

机构信息

School of Chemistry and Chemical Engineering, Beijing Institute of Technology, No. 5, South Street, Zhongguancun, Haidian District, Beijing 100081, PR China.

School of Chemistry and Chemical Engineering, Beijing Institute of Technology, No. 5, South Street, Zhongguancun, Haidian District, Beijing 100081, PR China.

出版信息

J Colloid Interface Sci. 2022 Dec 15;628(Pt A):508-518. doi: 10.1016/j.jcis.2022.07.150. Epub 2022 Jul 28.

Abstract

Obtaining of non-noble metal catalyst with bifunctional effect for both hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) in water splitting is highly desired to get high purity hydrogen. Here in, we design and fabricate Cu/Ni bimetallic phosphides with Graphdiyne (GDY) to form hybrid nanomaterial CuNiPx-GDY on Ni foam for the first time. The synergistical effect between GDY and transition metal phosphides, and the atomic scale heterojunctions between CuP and NiP, effectively accelerate the catalytical process both in HER and OER, resulting in extraordinarily small overpotentials of 178 mV and 110 mV at 10 mA cm for OER and HER in CuNiPx-GDY(1:1) in 1 M KOH, respectively. Density functional theory results show that, compared with pure CuNiPx, the introduced GDY can considerably improve the activity of OER and generate different active sites for OER and HER in CuNiPx-GDY(1:1). Thus CuNiPx-GDY(1:1) exhibits good catalytical performance and stability as catalyst for overall water splitting. This study provides a new sight into the structure and catalytic properties of GDY and transition metal phosphides hybrid nanomaterial, and also offers a new way to obtain advanced materials with remarkable catalytic properties.

摘要

为了获得高纯度氢气,迫切需要制备一种在水分解中对析氢反应(HER)和析氧反应(OER)均具有双功能作用的非贵金属催化剂。在此,我们首次设计并制备了具有石墨炔(GDY)的铜/镍双金属磷化物,使其在泡沫镍上形成杂化纳米材料CuNiPx-GDY。GDY与过渡金属磷化物之间的协同效应以及CuP和NiP之间的原子尺度异质结,有效地加速了HER和OER的催化过程,使得在1 M KOH中,CuNiPx-GDY(1:1)在10 mA cm下的OER和HER过电位分别低至178 mV和110 mV。密度泛函理论结果表明,与纯CuNiPx相比,引入的GDY可以显著提高OER的活性,并在CuNiPx-GDY(1:1)中为OER和HER产生不同的活性位点。因此,CuNiPx-GDY(1:1)作为全水分解催化剂表现出良好的催化性能和稳定性。本研究为GDY与过渡金属磷化物杂化纳米材料的结构和催化性能提供了新的见解,也为获得具有卓越催化性能的先进材料提供了新途径。

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