纳米片
过电位
异质结
材料科学
催化作用
金属
密度泛函理论
化学工程
电荷密度
分解水
纳米技术
无机化学
化学
光电子学
物理化学
冶金
电化学
电极
计算化学
光催化
物理
工程类
量子力学
生物化学
作者
Sundaram Chandrasekaran,Na Li,Zhuang Yang,Lijun Sui,Zhizhong Xiao,Dayong Fan,Vanchiappan Aravindan,Chris Bowen,Huidan Lu,Yongping Liu
标识
DOI:10.1016/j.cej.2021.134073
摘要
The creation of heterostructures based on non-precious metals with platinum-like hydrogen evolution reaction (HER) performance remains a challenge for hydrogen fuel technologies. Motivated by the fascinating properties of heterostructures, we establish here an effective approach to fabricate the heterostructured M−N−Ni9S8/Nb2O5 (M = Co, Fe, or Cu) catalysts using spatially separated Ni9S8 nanosheet/Nb2O5 nanobelts that are coupled with nitrogen (N) and metal atoms. Due to its improved intrinsic activity, interface-rich structure, abundant active sites, and large surface area the Co−N−Ni9S8/Nb2O5 heterostructure achieved a low acidic HER overpotential of −171 mV at −10 mA cm−2, thereby performing better than existing heterostructures. Moreover, for the alkaline HER, the Cu−N−Ni9S8/Nb2O5 heterostructure required a low overpotential of −109 mV at −10 mA cm−2, which is close to the performance of Pt/C catalyst. Density functional theory (DFT) predictions indicate that the local charge distribution and electronic properties at the heterointerface of Ni9S8/Nb2O5 can be significantly modulated by co-doping of metals with N atoms, resulting in optimal adsorption energy and reduced water dissociation barrier; thereby accelerating the acidic and alkaline HER activity. This work, therefore, provides a new design principle to create advanced heterostructured catalysts.
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