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◆ ACS Applied Nano Materials2026-04-01· Quantum dot

Band Engineering of Lignin Nanoparticle/Graphene Quantum Dots Heterojunction for In Situ Photocatalytic Hydrogen Peroxide Synthesis

Xinyu Xiao, Kangqi Lei, Zhicheng Yuan, Honghan Wang, Shangru Zhai

原始摘要(英文原文)· Original abstract
Lignin, Earth’s most abundant renewable aromatic polymer, displays intrinsic photoactivity that enables strategies for high-value utilization. In this work, lignin nanoparticle/graphene quantum dot composites (EL-GQDs) were synthesized via surface modification for efficient H 2 O 2 production, achieving 116.4 μM of H 2 O 2 within 1 h at a photocatalyst dosage of 10 mg. Directional electron transport driven by π–π stacking interactions within the heterogeneous EL-GQDs structure facilitates efficient charge carrier migration. Mechanistic investigations demonstrate that GQD incorporation substantially lowers the electron migration impedance at the EL-GQDs surface by restructuring the electronic configuration of lignin nanoparticles, while concurrently extending the photoresponse threshold to 436 nm. Combined experimental and computational approaches reveal two key molecular features: the β-O-4 ether bond hinders HOMO–LUMO orbital overlap, whereas the hydroxyl group at the Cα position enhances the electron-accepting capacity of the LUMO orbital. Notably, oxygen photoreduction constitutes the dominant pathway for H 2 O 2 generation in EL-GQDs. The concurrent water oxidation reaction delays electron–hole recombination by scavenging holes. Radical quenching experiments further confirm the involvement of superoxide radical intermediates during EL-GQDs catalysis, elucidating the specific mechanism of H 2 O 2 synthesis and establishing design principles for practical implementation.
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Band Engineering of Lignin Nanoparticle/Graphene Quantum Dots Heterojunction for In Situ Photocatalytic Hydrogen Peroxide Synthesis — 科研速览 Science Skim