再分配(选举)
电合成
金属间化合物
材料科学
电荷(物理)
乙烯
化学工程
固定费用
催化作用
光化学
纳米技术
结晶学
反应中间体
作者
Limin Liu,Rongxin Xia,Chen Deng,Huiyan Zhang,Shangqian Zhu,Qi Hao,Xunhua Zhao,Daolun Liang,Jason Chun-Ho Lam,Dekui Shen,Wenlei Zhu,Richen Lin
标识
DOI:10.1038/s41467-026-74181-y
摘要
The precise regulation of Cu surface electronic structure governs C-C coupling pathways and intermediate adsorption to enhance ethylene selectivity. However, how heteroatom dopants modulate the flux of oxygen-bound intermediates remains unclear. Herein, we establish a predictive framework based on six dopant elements’ electron orbital characteristics, demonstrating that p-orbital metal doping enables favorable orbital-center proximity for hybridization with Cu active centers. Al-incorporated Cu balances adsorption affinities for *CO, *H, and *O, thereby reducing the *OCCO formation barrier. Controlled Al doping in CuAl single-atom alloy (CuAlSA) induces lattice expansion and d-band center downshifting (ΔεCu = −2.94 eV), achieving favorable d-p orbital proximity (δd, p = −1.00 eV) and a low C-C coupling energy barrier (ΔE = 0.30 eV). In situ Raman spectroscopy confirms that the optimized d-p proximity promotes C-C bond formation and *OCCO hydrogenation to *CH2CHO, redirecting intermediate flux from methane toward ethylene. CuAlSA consequently exhibits 78.8% ethylene Faraday efficiency under pure CO2 and retains 70.2% under 15% CO2. This work establishes a strategy for directing oxygen-bound intermediates in CO2-to-C2H4 electrosynthesis. Turning carbon dioxide into ethylene requires catalysts that control intermediate formation and coupling on copper surfaces. Here, the authors show that aluminum-doped copper tunes these intermediates through orbital interactions, enabling efficient ethylene production from dilute carbon dioxide.
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