吸附
法拉第效率
选择性
电极
电化学
材料科学
渗透(战争)
化学工程
联轴节(管道)
化学
可再生能源
工作(物理)
二氧化碳
电流密度
选择性吸附
催化作用
无机化学
纳米技术
热液循环
化学物理
电极电位
能源消耗
能量转换效率
活性炭
作者
Huanyi Zhu,Xiao Dong,Cheng Luo,Yiheng Wei,Jianing Mao,Xiaohu Liu,Jiayu Xia,Ziran Xu,Xiaotong Wang,Xiaocheng Lu,Shoujie Li,Aohui Chen,Guihua Li,Yanfang Song,Wei Wei,Wei Chen
标识
DOI:10.1016/j.apcatb.2025.126332
摘要
The electrochemical reduction of CO 2 to value-added chemicals, such as multi-carbon (C 2+ ) compounds, using green electricity provides a sustainable route to renewable energy consumption and CO 2 emission abatement simultaneously. Yet how to enhance the selectivity of C 2+ compounds under ampere-level current densities remains a significant challenge. Addressing this limitation requires optimizing the adsorption balance of the critical *CO intermediate with CO 2 surface coverage at the triphasic reaction interface. Herein, a stable Zn-doped-Cu active sites was constructed by hydrothermal process over hollow-fiber penetration electrode (Zn-Cu HPE) with balanced adsorption for tailoring the *CO coverage and configuration to facilitate asymmetric C–C coupling. Thus, a C 2+ faradaic efficiency of 81.2% with a total current density of 2.5 A cm −2 at −1.1 V vs. RHE was achieved, outperforming state-of-the-art electrocatalysts. Experimental results and theoretical simulations demonstrated that not only the Zn-doped-Cu active sites over Zn-Cu HPE but also the adsorption dynamic equilibrium favor the asymmetric C-C coupling of *CO and *CHO intermediates, promoting the selectivity and activity of C 2+ products. This work offers a promising strategy of electrode design for efficient CO 2 -to-C 2+ conversions. Hydrothermally constructed Zn-doped-Cu active sites over Zn-Cu HPE with balanced adsorption optimize *CO coverage and configuration, achieved efficient and stable electrical reduction of carbon dioxide to multi-carbon products at ampere-level current density. By regulating the CO 2 feed concentration, the adsorption dynamic equilibrium favors the asymmetric C-C coupling of *CO and *CHO intermediates, promoting the selectivity and activity of C 2+ products. • Hydrothermally constructed Zn-doped-Cu active sites over hollow-fiber penetration electrode with balanced adsorption optimize *CO coverage and configuration, achieving an 81.2% C 2+ faradaic efficiency at 2.5 A cm -2 . • By regulating the CO 2 feed concentration, the adsorption dynamic balance equilibrium be established, which effectively promotes asymmetric *CO-*CHO coupling. • In-situ characterization and DFT verified the promoting effect of the Zn-doped Cu active sites and dynamic adsorption balance on asymmetric coupling.
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