Dual-Vacancy-Induced Selective Oxidative Cleavage of C α –C β Bonds for the Electrocatalytic Depolymerization of Lignin
作者:Yulu Yang, Lingyi Kong, Zhongcheng Xia, Yuanqing He, Yafei Li, Shuangyin Wang, Yuqin Zou · 发表于:Journal of the American Chemical Society · 年份:2025 · DOI:10.1021/jacs.5c12841 · 被引用次数:19 · 研究领域:Oxidative Organic Chemistry Reactions、Biochemical and biochemical processes、Lignin and Wood Chemistry
The electrocatalytic depolymerization of lignin into phenolic and carboxylic acid compounds presents a promising strategy for biomass valorization via selective C–C/C–O bond cleavage under mild conditions. However, two major challenges hinder its practical implementation: inefficient C–C bond cleavage and excessive overoxidation of the desired phenolic products. Herein, we demonstrate an engineered vacancy-rich nickel hydroxide catalyst (Ni(OH) 2 –V) that achieves exceptional performance in both C α –C β bond cleavage of β- O -4 lignin linkages and suppression of phenol overoxidation. Through integrated experimental and computational analyses, this study elucidates how the synergistic introduction of cations and oxygen dual-vacancy in Ni(OH) 2 –V contributes to its enhanced catalytic activity. Specifically, these dual-vacancies (1) significantly enhance the interfacial adsorption of hydroxide ions on the 2-phenoxy-1-phenylethanol (2-PPE) substrate, (2) effectively lower the energy barrier of the rate-determining step (C α –OH → C α ═O), and (3) promote the timely desorption of phenol, thereby preventing overoxidation. The optimized catalyst achieved complete conversion of 2-PPE, yielding exceptional yields of 85.7% for phenol and 96.5% for benzoic acid at 1.40 V vs the reversible hydrogen electrode (V RHE ). These results represent 2.4-fold and 2.3-fold improvements over pristine Ni(OH) 2 . Furthermore, the practical utility of Ni(OH) 2 –V was validated through the depolymeri...