低聚物
材料科学
可再生能源
碳纤维
光催化
烟气
分子间力
化学
化学工程
催化作用
有机化学
能量转换
乙醇
光化学
碳链
纳米技术
能量转换效率
作者
Yifeng Zhang,Shuya Hao,Yanruzhen Wu,Fuyao Huang,Jingyi Pang,Xuelu Wang,Xin Xu,Kaiwen Zeng,Gang Zheng,Huisheng Peng
标识
DOI:10.1002/anie.202521378
摘要
Abstract Solar‐driven conversion of CO 2 into value‐added products is promising for renewable energy storage and carbon neutrality. Although current photocatalysts demonstrate the capability to convert CO 2 into multiple carbon products including ethanol, their performance is limited by high C─C coupling energy barrier and inefficient intermediate enrichment. Here we synthesize a cobalt‐backboned oligomer as an efficient photocatalyst to generate a record‐high ethanol production rate of 497 µmol/(g·h) for CO 2 photoreduction. It also maintains high performance in cases with simulated industrial flue gas with ∼15% CO 2 and a Martian‐like atmosphere with ∼95% CO 2 . These properties stem from unique electronic modulation through metal–metal bonding and intermolecular assembly for high‐activity reaction channels. This atomically precise cobalt‐backboned oligomer opens a new avenue for designing photocatalysts.
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