催化作用
选择性
光催化
密度泛函理论
锰
硫化物
光化学
硫黄
乙烯
材料科学
化学
联轴节(管道)
锌
反应中间体
过渡金属
激进的
偶联反应
无机化学
多相催化
纳米技术
原位
二氧化碳
组合化学
二氧化硫
化学工程
反应机理
硫化物矿物
作者
Zhiling Tang,Yingli Wang,Tian Qin,Yuechang Wei,Jing Xiong,Xiong Wang,Xuanzhen Li,Min Liu,Yunpeng Liu,Xi Liu,Zhen Zhao
标识
DOI:10.1038/s41467-026-68830-5
摘要
Abstract Photocatalytic conversion of carbon dioxide to value-added chemicals, particularly multi-carbon products, offers a promising route toward carbon-neutral cycles. However, achieving high activity and selectivity remains extremely challenging due to the instability of key reaction intermediates and limited C–C coupling efficiency. Herein, we report a low-coordination manganese single-atom catalyst embedded in zinc sulfide (Mn 1 –ZnS v ) that enables efficient and selective CO 2 -to-C 2+ conversion. In-situ spectroscopic analyses and density functional theory calculations reveal that sulfur vacancies are created at the Mn single-atom coordination sites and induce the formation of coordination-unsaturated Mn-S 2 configuration. The asymmetric coordination environment of Mn modulates local charge distribution, strengthens *CO adsorption, and promotes *CO and *CHO coupling to form the *COCHO intermediate for efficient C–C coupling. As a result, the Mn 1 –ZnS v catalyst achieved 99.1% selectivity for ethylene with a formation rate of 76.6 μmol g -1 h -1 . This study highlights the critical role of atomic-level coordination engineering in advancing photocatalytic CO 2 -to-C 2+ conversion.
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