催化作用
法拉第效率
质子化
材料科学
质子
离解(化学)
电化学
氢
同步
选择性
电解水
氧化还原
光化学
无机化学
反应机理
活化能
碳纳米管
可逆氢电极
反应中间体
碳酸盐
电流密度
氢的自旋异构体
继电器
化学工程
原位
电化学电位
选择性催化还原
制氢
水煤气变换反应
质子导体
作者
Jianfa Chen,Zhongfen Nie,Tianjing Wang,Youxia Liu,Kui Shen,Liyu Chen,Yingwei Li
摘要
ABSTRACT Electrochemical CO 2 reduction reaction (CO 2 RR) in acidic media can suppress carbonate formation and boost CO 2 utilization efficiency. However, at high current densities, rapid proton consumption induces localized alkalization, causing insufficient proton supply and limiting reaction kinetics. Here we report a dynamic proton‐relay strategy that enables rapid and selective CO 2 RR by integrating atomically dispersed Ni–N sites on carbon with adjacent Te species (Ni–N/Te–C). The incorporated Te centers form reversible Te–OH/Te–O − couples that simultaneously promote water activation and mediate controlled proton delivery, thereby synchronizing hydrogen supply with intermediate protonation while suppressing competitive hydrogen evolution. As a result, Ni–N/Te–C achieves a CO Faradaic efficiency above 94.8% across a wide potential window from −0.8 to −1.4 V versus the reversible hydrogen electrode. Ni–N/Te–C delivers an industrial CO current density of 562.5 mA cm −2 and a turnover frequency of 16291.9 h −1 at −1.4 V, significantly higher than that of Ni–N/C. The catalyst also demonstrates remarkable durability, maintaining 93.8% selectivity for 300 h at 100.0 mA cm −2 . In situ spectroscopic characterization and theoretical calculations reveal that the Te–OH‐mediated proton relay modulates the reaction pathway of water dissociation and CO 2 protonation with significantly lower energy barriers, thus accelerating *COOH formation.
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