Liu Xiang, Wang Ye, Duan Haohong
Department of Chemistry, Tsinghua University, 30 Shuangqing Rd, Beijing 100084, China.
Haihe Laboratory of Sustainable Chemical Transformations, Tianjin 300192, China.
Precis Chem. 2024 Jun 6;2(9):428-446. doi: 10.1021/prechem.4c00024. eCollection 2024 Sep 23.
Lignin, as the second largest renewable biomass resource in nature, has increasingly received significant interest for its potential to be transformed into valuable chemicals, potentially contributing to carbon neutrality. Among different approaches, renewable electricity-driven biomass conversion holds great promise to substitute a petroleum resource-driven one, owing to its characteristics of environmental friendliness, high energy efficiency, and tunable reactivity. The challenges lie on the polymeric structure and complex functional groups in lignin, requiring the development of efficient electrocatalysts for lignin valorization with enhanced activity and selectivity toward targeted chemicals. In this Review, we focus on the advancement of electrocatalytic valorization of lignin, from monomers, to dimers and to raw lignin, toward various value-added chemicals, with emphasis on catalyst design, reaction innovation, and mechanistic study. The general strategies for catalyst design are also summarized, offering insights into enhancing the activity and selectivity. Finally, challenges and perspectives for the electrocatalytic conversion of lignin are proposed.
木质素作为自然界中第二大可再生生物质资源,因其具有转化为有价值化学品的潜力,越来越受到广泛关注,这可能有助于实现碳中和。在不同的方法中,可再生电力驱动的生物质转化因其环境友好、能源效率高和反应活性可调等特点,有望替代石油资源驱动的转化方式。挑战在于木质素的聚合物结构和复杂的官能团,这需要开发高效的电催化剂,以实现木质素的增值利用,并提高对目标化学品的活性和选择性。在本综述中,我们重点关注木质素从单体到二聚体再到原始木质素的电催化增值利用,以制备各种增值化学品,重点关注催化剂设计、反应创新和机理研究。还总结了催化剂设计的一般策略,为提高活性和选择性提供了思路。最后,提出了木质素电催化转化面临的挑战和前景。