Serafini Martina, Mariani Federica, Basile Francesco, Scavetta Erika, Tonelli Domenica
Department of Industrial Chemistry "Toso Montanari", Viale del Risorgimento 4, 40136 Bologna, Italy.
Center for Chemical Catalysis-C3, University of Bologna, Viale del Risorgimento 4, 40136 Bologna, Italy.
Nanomaterials (Basel). 2023 May 24;13(11):1723. doi: 10.3390/nano13111723.
In the last century, conventional strategies pursued to reduce or convert CO have shown limitations and, consequently, have been pushing the development of innovative routes. Among them, great efforts have been made in the field of heterogeneous electrochemical CO conversion, which boasts the use of mild operative conditions, compatibility with renewable energy sources, and high versatility from an industrial point of view. Indeed, since the pioneering studies of Hori and co-workers, a wide range of electrocatalysts have been designed. Starting from the performances achieved using traditional bulk metal electrodes, advanced nanostructured and multi-phase materials are currently being studied with the main goal of overcoming the high overpotentials usually required for the obtainment of reduction products in substantial amounts. This review reports the most relevant examples of metal-based, nanostructured electrocatalysts proposed in the literature during the last 40 years. Moreover, the benchmark materials are identified and the most promising strategies towards the selective conversion to high-added-value chemicals with superior productivities are highlighted.
在上个世纪,为减少或转化一氧化碳而采用的传统策略已显示出局限性,因此推动了创新路线的发展。其中,在非均相电化学一氧化碳转化领域已做出了巨大努力,该领域具有操作条件温和、与可再生能源兼容以及从工业角度来看具有高度通用性的特点。事实上,自堀和同事的开创性研究以来,已设计出多种电催化剂。从使用传统块状金属电极所取得的性能出发,目前正在研究先进的纳米结构和多相材料,其主要目标是克服通常为大量获得还原产物所需的高过电位。本综述报道了过去40年文献中提出的基于金属的纳米结构电催化剂的最相关实例。此外,还确定了基准材料,并强调了实现向具有卓越生产率的高附加值化学品选择性转化的最有前景的策略。