Wang Jiangjiang, Dong Xiao, Feng Guanghui, Lu Xiaocheng, Wu Gangfeng, Li Guihua, Li Shoujie, Mao Jianing, Chen Aohui, Song Yanfang, Zeng Jianrong, Wei Wei, Chen Wei
Low-Carbon Conversion Science and Engineering Center, Shanghai Advanced Research Institute, Chinese Academy of Sciences, Shanghai, 201210, P.R. China.
University of Chinese Academy of Sciences, Beijing, 100049, P. R. China.
Angew Chem Int Ed Engl. 2024 Oct 24;63(44):e202411173. doi: 10.1002/anie.202411173. Epub 2024 Sep 24.
The electrochemical propylene epoxidation reaction (PER) provides a promising route for ecofriendly propylene oxide (PO) production, instantly generating active halogen/oxygen species to alleviate chloride contamination inherent in traditional PER. However, the complex processes and unsatisfactory PO yield for current electrochemical PER falls short of meeting industrial application requirements. Herein, a spatial-coupling strategy over RuO/Ti hollow-fiber penetration electrode (HPE) is adopted to facilitate efficient PO production, significantly improving PER performance to ampere level (achieving over 80 % PO faradaic efficiency and a maximum PO current density of 859 mA cm). The synergetic combination of the penetration effect of HPE and the spatial-coupled reaction sequence, enables the realization of ampere-level PO production with high specificity, exhibiting significant potentials for economically viable PER applications.
电化学丙烯环氧化反应(PER)为环氧丙烷(PO)的绿色生产提供了一条有前景的途径,能即时生成活性卤素/氧物种,以减轻传统PER中固有的氯污染。然而,当前电化学PER复杂的过程和不尽人意的PO产率无法满足工业应用要求。在此,采用了一种基于RuO/Ti中空纤维穿透电极(HPE)的空间耦合策略来促进高效PO生产,将PER性能显著提升至安培级(PO法拉第效率超过80%,最大PO电流密度达到859 mA cm)。HPE的穿透效应与空间耦合反应序列的协同组合,使得能够以高特异性实现安培级PO生产,在经济可行的PER应用中展现出巨大潜力。