光热治疗
原位
选择性
催化作用
吸附
联轴节(管道)
化学
材料科学
还原(数学)
轨道杂交
产量(工程)
化学还原
工作(物理)
光热效应
碳纤维
纳米技术
动力学
选择性催化还原
Boosting(机器学习)
立体化学
偶联反应
物理化学
光化学
作者
Guangmei Gan,Zhixiong Yang,Mengying Wang,Yang Shi,Yuan Li,Gaoke Zhang,Jie Wu
摘要
ABSTRACT Photothermal catalytic CO 2 reduction to multi‐carbon products is a promising approach for carbon utilization, yet the design of active sites that effectively promote multistep C─C coupling toward selective C 2 H 4 formation remains a significant challenge. Hence, we employ an in situ interfacial engineering strategy to construct crystalline/amorphous Bi 19 Br 3 S 27 /NiS x (BBSN) photothermal catalysts with strong p‐d orbital hybridization. The optimized BBSN‐8 achieves a C 2 H 4 production rate of 41.38 µmol g −1 h −1 with a selectivity of 96.8% under full‐spectrum irradiation, which exhibits a remarkable advantage in the field of C 2 H 4 production. Experimental results and theoretical calculations demonstrate that Ni incorporation optimizes CO 2 adsorption from overly strong Bi─C single‐site binding to balanced multi‐sites adsorption, while newly formed p‐d orbital hybridization establishes electronically cooperative Bi─S─Ni active sites stabilizing both carbon‐ and oxygen‐centered species, synergistically facilitating *CO─CHO* coupling and boosting C 2 H 4 formation. This work demonstrates that in situ interfacial orbital hybridization can regulate intermediate coupling and steer photothermal CO 2 reduction toward highly selective C 2 H 4 formation.
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