极化(电化学)
化学
硫黄
电场
激进的
催化作用
光催化
离子
电子转移
化学工程
产量(工程)
化学物理
电极
密度泛函理论
解吸
光化学
材料科学
能量转换效率
无机化学
极地的
矿化(土壤科学)
选择性
键裂
载流子
电子
能量转换
动力学
电压
光电子学
电流密度
科技与社会
作者
Yinyin He,Jie Li,Shunmugavel Saravanamurugan,Hu Li
出处
期刊:Energy & environmental materials
[Wiley]
日期:2026-01-09
卷期号:9 (4)
被引量:3
摘要
The selective photocatalytic oxidation is one of the versatile routes for biomass valorization, while α‐C–H bond cleavage is typically limited by uncontrolled hole migration and poor stability of active free radicals. Herein, we showcase the integration of interlayer polarization modulation and interface engineering for directional C–H activation. As a proof of concept, phosphorus (P) incorporation amplifies the charge density gradient between [ZnS 4 ] and [InS 6 ] layers of P‐doped ZnIn 2 S 4 (P x ‐ZIS), anchoring a robust polarization electric field. In‐situ characterization and theoretical calculations reveal that the enhanced polarization electric field significantly improves carrier separation efficiency by spatially separating electron–hole pairs. Meanwhile, driving the oriented localization of holes to interfacial S sites in the Zn‐S layer stabilizes the generated sulfur anion radicals (S −· ). This not only promotes precise electron transfer from C–H bonds to P x ‐ZIS, enhancing α‐C–H adsorption/activation, but also reduces the product desorption barrier, associated with improved selectivity. The developed P 1 ‐ZIS can catalyze the partial oxidation of bio‐based 5‐hydroxymethylfurfural to exclusively afford 2,5‐diformylfuran with 90% yield under visible light at 25 °C, outperforming state‐of‐the‐art photocatalytic systems. This work establishes a new paradigm of combining polarization field and interface engineering for merging selective C–H activation and in‐situ transformation of biomass feedstock.
科研通智能强力驱动
Strongly Powered by AbleSci AI