过电位
催化作用
电化学
析氧
电解质
分解水
离解(化学)
材料科学
镍
多金属氧酸盐
兴奋剂
氢
电催化剂
化学工程
纳米技术
金属
无机化学
化学
电极
物理化学
冶金
光电子学
工程类
有机化学
光催化
生物化学
作者
Yichao Huang,Yuanhui Sun,Xueli Zheng,Toshihiro Aoki,Brian Pattengale,Jier Huang,Xin He,Wei Bian,Sabrina Younan,Nick Williams,Jun Hu,Jingxuan Ge,Ning Pu,Xingxu Yan,Xiaoqing Pan,Lijun Zhang,Yongge Wei,Jing Gu
标识
DOI:10.1038/s41467-019-08877-9
摘要
Abstract Engineering catalytic sites at the atomic level provides an opportunity to understand the catalyst’s active sites, which is vital to the development of improved catalysts. Here we show a reliable and tunable polyoxometalate template-based synthetic strategy to atomically engineer metal doping sites onto metallic 1T-MoS 2 , using Anderson-type polyoxometalates as precursors. Benefiting from engineering nickel and oxygen atoms, the optimized electrocatalyst shows great enhancement in the hydrogen evolution reaction with a positive onset potential of ~ 0 V and a low overpotential of −46 mV in alkaline electrolyte, comparable to platinum-based catalysts. First-principles calculations reveal co-doping nickel and oxygen into 1T-MoS 2 assists the process of water dissociation and hydrogen generation from their intermediate states. This research will expand on the ability to improve the activities of various catalysts by precisely engineering atomic activation sites to achieve significant electronic modulations and improve atomic utilization efficiencies.
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