光催化
选择性
催化作用
贵金属
化学
纳米技术
材料科学
乳酸
石墨氮化碳
石墨烯
肖特基势垒
光化学
化学工程
甲酸
锐钛矿
氮化碳
纳米颗粒
太阳能
可再生能源
作者
Jiayi Yuan,Baorui Song,Chaozheng Zhou,Meifang Wu,Jun Chen,Qun Xu
出处
期刊:Chemsuschem
[Wiley]
日期:2026-04-21
卷期号:19 (8): e70658-e70658
摘要
Fossil fuel overuse intensifies energy and environmental crises, underscoring the urgency for renewable energy. Photocatalysis converts solar to chemical energy, showing promise in biomass valorization. As a key platform compound, glucose oxidation yields high‐value products. This review systematically summarizes recent advances in photocatalytic glucose oxidation, with a focus on catalyst design and selectivity control mechanisms. Metal‐based systems (e.g., TiO 2 , ZnO, SnO 2 ) leverage crystallographic phase engineering, noble metal modification (Pt, Au), and defect engineering to enhance visible‐light absorption and carrier separation. For instance, Pt/TiO 2 achieves 84.3% selectivity for glucaric acid via oxygen vacancy mediation, while Au/ZnO reduces the C2–C3 cleavage barrier to 0.45 eV, boosting lactic acid selectivity to 38%. Carbon nitride (g‐C 3 N 4 )‐based catalysts exhibit tunable bandgaps and high stability; oxygen‐doped ultrathin g‐C 3 N 4 achieves 89.7% lactic acid yield via superoxide radical (O 2 − ) pathways. Composite systems (e.g., Zn x Cd 1‐x S) enable simultaneous H 2 evolution and lactic acid production (87% selectivity) through phase‐boundary engineering. Key mechanisms include ligand‐to‐metal charge transfer, Schottky junctions, and single‐atom catalysis, which regulate reactive oxygen species (·OH, O 2 − , 1 O 2 ) for site‐specific oxidation. Challenges remain in scalability and energy efficiency, but integrated design strategies offer promising routes toward sustainable biomass refining.
科研通智能强力驱动
Strongly Powered by AbleSci AI