一氧化碳
双功能
材料科学
合成气
氢
阳极
电催化剂
制氢
甲醛
纳米颗粒
无机化学
化学工程
电化学
催化作用
纳米技术
电极
化学
有机化学
物理化学
工程类
作者
Meichun Qin,Shiying Fan,Xinyong Li,Zhifan Yin,Liang Wang,Aicheng Chen
标识
DOI:10.1021/acsami.1c08363
摘要
The hydrogen evolution reaction (HER) by electrocatalytic water splitting is a prospective and economical route. However, the approach is severely hindered by the sluggish anodic OER, poor reactivity of electrocatalysts, and low-value-added byproducts at the anode. Herein, formaldehyde was added as an anode sacrificial agent, and a bifunctional Co–Nx–C@Co catalyst containing abundant Co–N4 sites and Co nanoparticles was successfully fabricated and evaluated as both a cathodic and an anodic material for the HER and formaldehyde selective oxidation reaction (FSOR), respectively. Co–Nx–C@Co displayed a remarkable electrocatalytic performance simultaneously for both HER and FSOR with high hydrogen (H2) and carbon monoxide (CO) selectivity. Density functional theory calculations combined with experiments identified that Co–N4 and Co nanoparticles were dominating active sites for CO and H2 generation, respectively. The coupling tactic of FSOR at the anode not only expedites the reaction rate of HER but also offers a high-efficiency and energy-saving means for the generation of valuable H2/CO syngas.
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