材料科学
塔菲尔方程
过电位
石墨烯
催化作用
化学工程
杂原子
分解水
制氢
硫化镍
电催化剂
氧化物
计时安培法
电化学
镍
无机化学
纳米技术
电极
冶金
循环伏安法
化学
物理化学
有机化学
生物化学
工程类
戒指(化学)
光催化
作者
Mohamed B. Zakaria,Mohamed R. Berber,Yusuke Yamauchi,Amir Pakdel,Rui Cao,Ulf‐Peter Apfel
标识
DOI:10.1021/acsami.1c05888
摘要
Hydrogen production is a key driver for sustainable and clean fuels used to generate electricity, which can be achieved through electrochemical splitting of water in alkaline solutions. However, the hydrogen evolution reaction (HER) is kinetically sluggish in alkaline media. Therefore, it has become imperative to develop inexpensive and highly efficient electrocatalysts that can replace the existing expensive and scarce noble-metal-based catalysts. Herein, we report on the rational design of nonprecious heterostructured electrocatalysts comprising a highly conductive face-centered cubic nickel metal, a nickel sulfide (NiS) phase, and a reduced graphene oxide (rGO) doped with phosphorous (P), sulfur (S), and nitrogen (N) in one ordered heteromaterial named Ni/NiS/P,N,S–rGO. The Ni/NiS/P,N,S–rGO electrode shows the best performance toward HER in 1.0 M KOH media among all materials tested with an overpotential of 155 mV at 10.0 mA cm–2 and a Tafel slope of 135 mV dec–1. The performance is comparable to the herein used Pt/C-20% benchmark catalyst examined under the same experimental conditions. The chronoamperometry and chronopotentiometry measurements have reflected the high durability of the Ni/NiS/P,N,S–rGO electrode for technological applications. At the same time, the current catalyst showed a high robustness and structure retention after long-term HER performance, which is reflected by SEM, XRD, and XPS measurements.
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