材料科学
氰化物
光催化
氟
光化学
激子
动力学
氧化还原
催化作用
工作(物理)
反应中间体
化学工程
氮化碳
纳米技术
能量转换效率
还原(数学)
反应中间体
降级(电信)
电子转移
碳纤维
氮化物
密度泛函理论
载流子
电荷(物理)
化学动力学
活动站点
能量转换
反应机理
可见光谱
合理设计
作者
Sheng‐Qi Guo,Qingqing Dong,Xiaodong Sun,Ziqi Zhang,Linda Wang,Lei Bao,Bozhan Li,Hui Li,Yanrui Li,Tianyi Ma
标识
DOI:10.1002/adfm.202517843
摘要
Abstract Polymeric carbon nitride (PCN) is a promising CO 2 photoreduction catalyst, yet its ordered structure limits interfacial reactivity. To address this, we synergistically introduced F‐doping and cyanide (─CN) groups into PCN, constructing a co‐modified material denoted as FCCN. Structural characterization confirms the coexistence of co‐modifications within the same s‐triazine heterocycle, while such architecturally tailored PCN materials remain a seldom‐achieved configuration for CO 2 photoreduction. FCCN achieves efficient photocatalytic CO 2 reduction in gas‐solid reactions, with CO as the primary reduction product and O 2 as the oxidation product. The CO evolution rate reaches 106.5 µmol·g −1 ·h −1 (96.8% selectivity), representing the highest performance level among all PCN‐based photocatalytic systems reported to date. Mechanistic investigations confirm that co‐modification‐induced built‐in fields not only enhance exciton generation kinetics but also regulate charge transfer dynamics. Concurrently, reactivation of dormant structural zones elevates the density of catalytically active sites for CO 2 adsorption/activation. Furthermore, its regulation of the formation energy of key intermediates COOH * and CHO * in the CO 2 reduction process enables the planning of reaction pathways, providing support for the efficient conversion of CO 2 to CO. This work provides a new approach for developing highly active PCN‐based photocatalysts and brings new opportunities for efficient directional conversion of CO 2 .
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