Issue 7, 2026

Piezocatalytic oxidation of lignin-derived phenol to p-benzoquinone: a sustainable route for green polymerization inhibitors

Abstract

Conventional processes for the conversion of lignin-derived phenol to p-benzoquinone (p-BQ) are associated with environmental concerns and efficiency issues, which necessitates the development of greener and more selective alternatives. This study reports a sulfur vacancy-engineered 2H-MoS2 piezoelectric catalyst that enables efficient phenol conversion under mild aqueous/air conditions. The optimized catalyst exhibits outstanding performance, achieving a 92.57% phenol conversion and a 66.56% p-BQ yield within 6 hours. Integrated experimental and theoretical studies elucidate that sulfur vacancies play a pivotal dual role. Beyond enhancing the material's piezoelectric response and optimizing charge carrier dynamics, they function critically within the reaction mechanism by (1) acting as active sites that promote the adsorption of phenol and the subsequent desorption of p-BQ, and (2) selectively modulating the proportion of hydroxyl radicals (˙OH) among the various reactive species. This work clarifies the central role of defect engineering in modulating active species and product selectivity, offering a new strategy for the green valorization of lignin derivatives.

Graphical abstract: Piezocatalytic oxidation of lignin-derived phenol to p-benzoquinone: a sustainable route for green polymerization inhibitors

Supplementary files

Article information

Article type
Paper
Submitted
14 Nov 2025
Accepted
26 Jan 2026
First published
27 Jan 2026
This article is Open Access
Creative Commons BY-NC license

Green Chem., 2026,28, 3243-3257

Piezocatalytic oxidation of lignin-derived phenol to p-benzoquinone: a sustainable route for green polymerization inhibitors

X. Ma, B. Zhang, X. Huang, Q. Xu and R. Ruan, Green Chem., 2026, 28, 3243 DOI: 10.1039/D5GC06083D

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