六亚甲基四胺
材料科学
镍
催化作用
化学工程
纳米颗粒
二氧化碳电化学还原
电催化剂
合成气
纳米技术
碳纤维
一氧化碳
无机化学
化学
冶金
电化学
电极
有机化学
复合数
复合材料
工程类
物理化学
作者
Hongyu Chen,Zhaojie Wang,Hongzhi Cui,Shoufu Cao,Zengxuan Chen,Yi Zhang,Shuxian Wei,Shuxian Wei,Siyuan Liu,Baojun Wei,Xiaoqing Lü
标识
DOI:10.1016/j.jcis.2024.05.224
摘要
Carbon dioxide (CO2) electroreduction provides a sustainable route for realizing carbon neutrality and energy supply. Up to now, challenges remain in employing abundant and inexpensive nickel materials as candidates for CO2 reduction due to their low activity and favorable hydrogen evolution. Here, the representative iron-modified nickel nanoparticles embedded in nitrogen-doped carbon (Ni1-Fe0.125-NC) with the porous botryoid morphology were successfully developed. Hexamethylenetetramine is used as nitrogen-doped carbon source. The collaboration of internal lattice expansion with electron effect and external confinement effect with size effect endows the significant enhancement in electrocatalytic CO2 reduction. The optimized Ni1-Fe0.125-NC exhibits broad potential ranges for continuous carbon monoxide (CO) production. A superb CO Faradaic efficiency (FECO) of 85.0 % realized at −1.1 V maintains a longtime durability over 35 h, which exceeds many state-of-the-art metal catalysts. Theoretical calculations further confirm that electron redistribution promotes the desorption of CO in the process for favorable CO production. This work opens a new avenue to design efficient nickel-based materials by considering the intrinsic structure and external confinement for CO2 reduction.
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