氮集成二氧化碳还原反应合成尿素的新型电催化剂

Zhishan Liang , Carmen Lee , Jiawei Liu , Yue Hu , Dongxue Han , Li Niu , Qingyu Yan
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引用次数: 2

摘要

传统的尿素生产方法是一种碳排放、能源密集型技术,与碳中和的概念相矛盾。幸运的是,可再生能源在电化学合成中的使用显示出生产高价值氮产品的巨大潜力,使电催化尿素生产成为一种有前途和可持续的方法。然而,低收益率和法拉第效率,以及C-N键形成机制的不清楚,限制了其大规模的工业发展。研究人员正在寻找更高性能的电催化剂。本文详细讨论了利用二氧化碳和各种氮源电化学合成尿素的最新进展,包括催化剂的设计和制备,以及碳氮偶联反应的机理。它还对尿素电合成面临的挑战和前景进行了全面分析。开发有针对性和高效的尿素合成新催化剂有望带来更可持续和更具成本效益的生产方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Booming electrocatalysts for urea synthesis via nitrogen-integrated carbon dioxide reduction reaction

The traditional method of urea production is a carbon-emitting, energy-intensive technology that contradicts the concept of carbon neutrality. Fortunately, the use of renewable energy in electrochemical synthesis has shown great potential for producing high-value nitrogen products, making electrocatalytic urea production a promising and sustainable approach. However, the low yield and Faraday efficiency, as well as the unclear mechanism of C-N bond formation, limit its large-scale industrial development. Researchers are seeking higher-performance electrocatalysts. This article discusses in detail the latest progress in the electrochemical synthesis of urea using carbon dioxide and various nitrogen sources, including catalyst design and preparation, as well as the mechanism of C-N coupling reactions. It also provides comprehensive analysis on the challenges and prospects facing urea electro-synthesis. The development of targeted and efficient new catalysts for urea synthesis is anticipated to bring about more sustainable and cost-effective production methods.

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