Mechanochemical fabrication of biochar/pyrite nanocomposite for efficient photocatalytic CO₂ reduction coupled with biomass valorization

Abstract

Coupling solar-driven CO₂ reduction with the valorization of waste biomass-derived platform chemicals represents a pivotal strategy toward achieving carbon neutrality and sustainable resource utilization. However, the high dissociation energy of the C=O bond in CO 2 and the complex side reactions involved in biomass conversion often result in low conversion efficiency and poor product selectivity. To address these challenges, herein, a biochar/pyrite nanocomposite was fabricated via a facile mechanical ball-milling method using natural pyrite and biochar derived from waste corn stover. During the ball-milling process, intimate interfacial contact is established between the two components, leading to the formation of a high-low heterojunction that effectively promotes the spatial separation and interfacial migration of photogenerated charge carriers. The optimized 30 wt% biochar/pyrite sample exhibits outstanding photocatalytic performance under simulated visible light irradiation, achieving a CO yield of 320.7 μmol•g -1 •h -1 with a selectivity of 90.7%, together with a 5-hydroxymethylfurfural conversion of 86.4% and a high 2,5diformylfuran selectivity of 93.2%. The incorporation of biochar not only enhances the adsorption capacity for the reactants but also substantially boosts the photocatalytic activity of pyrite through facilitated interfacial charge transfer. This work provides a new strategy for constructing efficient photocatalytic systems based on natural minerals and waste biomass, enabling the synergistic coupling of CO 2 reduction and biomass valorization.

Article information

Article type
Paper
Submitted
14 May 2026
Accepted
08 Jun 2026
First published
09 Jun 2026

Green Chem., 2026, Accepted Manuscript

Mechanochemical fabrication of biochar/pyrite nanocomposite for efficient photocatalytic CO₂ reduction coupled with biomass valorization

H. Tian, C. Han, Z. Xu, C. Yao and X. Li, Green Chem., 2026, Accepted Manuscript , DOI: 10.1039/D6GC02845D

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