A Covalent Organic Framework as Photocatalyst for Smart Conversion Between Photooxidation and Photoreduction and H2O2 Production in Full pH Environment

共价有机骨架 光催化 试剂 碱度 苯酚 共价键 材料科学 光化学 化学工程 催化作用 化学 有机化学 工程类
作者
Hao Li,Yanwei Li,Xiaoling Lv,Chong Liu,Nazhen Zhang,Jing Zang,Penghan Yue,Yue Gao,Cong Liu,Yanhui Li
出处
期刊:Advanced Materials [Wiley]
卷期号:37 (11): e2415126-e2415126 被引量:63
标识
DOI:10.1002/adma.202415126
摘要

Abstract Developing multifunctional photocatalysts with intelligent self‐adjusting is of great significance in the photocatalytic process. Herein, a smart covalent organic framework (Por‐HQ‐COF) with a phenol‐quinone conversion structure with pH changes is constructed for photooxidation, photoreduction, and H2O2 production. As a smart photocatalyst, Por‐HQ‐COF can convert into Por‐BQ‐COF intelligently with a trigger including solution pH, and vice versa. The reconstruction of phenol‐quinone conversion not only significantly alters the morphologies and the specific surface areas of the COF, but also leads to an entirely change in the band energy and charge distribution to influence photoelectric properties. As a result, under acidic conditions, Por‐BQ‐COF converts into Por‐HQ‐COF automatically and can photoreduce high concentration Cr(VI) to Cr(III) efficiently. Under neutral conditions, the superoxide anions (·O2−) initiate the Por‐HQ‐COF reconstruction into Por‐BQ‐COF to accelerate photooxidation to degrade high‐concentration TC. Under alkaline conditions, Por‐HQ‐COF converts into Por‐BQ‐COF, can effectively photosynthesize H2O2 (1525 µmol h−1 g−1 at λ > 420 nm) in the absence of any sacrificial reagents, and reveal the strong alkalinity lower the energy barrier of hydrogen extraction from H2O and clarify active sites for H2O2 production. This work provides a new strategy for developing smart photocatalysts and fulfill the application across the full pH environment.
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