异质结
材料科学
分解水
化学工程
钴
镍
纳米技术
催化作用
化学
光电子学
光催化
生物化学
工程类
冶金
作者
Kaixi Wang,Yingying Guo,Zhonghui Chen,Donghai Wu,Shouren Zhang,Baocheng Yang,Jianan Zhang
出处
期刊:InfoMat
[Wiley]
日期:2021-09-27
卷期号:4 (6)
被引量:85
摘要
Abstract Interfacial engineering is a powerful method to improve the bifunctional electrocatalytic performance of pure phase catalysts. While it is expected to further optimize the electronic configuration of heterojunctions to boost the reaction kinetics in hydrogen/oxygen evolution reaction (HER/OER), but remains a challenge. Herein, a novel in situ hybrid heterojunction strategy is developed to construct 2D porous Co‐doped Ni/Ni 3 N heterostructure nanosheets (Co–Ni/Ni 3 N) by pyrolysis of partially cobalt substituted nickel‐zeolitic imidazolate framework (CoNi‐ZIF) nanosheets under NH 3 atmosphere. A combined experimental and theoretical studies manifest that the hybrid heterostructures can display regulative electronic states and downshift d‐band center from the Fermi level, as well as optimize the adsorption energy of reaction intermediates, thus reducing the thermodynamic energy barriers and accelerating the catalytic kinetics. Consequently, benefitting from the optimized electronic configuration, hierarchical hollow nanosheets architecture, and abundant doped heterojunctions, the hybrid Co–Ni/Ni 3 N heterostructure catalyst exhibits efficient catalytic activity for both HER (60 mV) and OER (322 mV) at 10 mA cm −2 in alkaline media, which is 105 and 47 mV lower than that of pure Ni 3 N, respectively. The electrochemically active surface area of Co–Ni/Ni 3 N is two times higher than that of Ni 3 N. Furthermore, the coupled practical water electrolyzer requires a low voltage of 1.575 V to reach 10 mA cm −2 , and it can be driven by a 1.5 V battery. This work highlights the interface engineering guidance for the rational establishment of hybrid interfaces by electronic modulation of interfacial effect for alkaline water splitting. image
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