Interfacial Microenvironment Modulation Enhancing Electron Transfer between Quasi-MOFs and Defective Semiconductor Arrays for Enhanced Photocatalytic Sterilization
作者:Rui Li, Xuan Zuo, Jingwen Lu, Xiang Xue, Wang Zhang, Zehua Liu, Minqi Wu, Yu Zhou, Huilin Hu, Furong Xiong, Dong Liu, Xiangliang Pan · 发表于:ACS Applied Materials & Interfaces · 年份:2025 · DOI:10.1021/acsami.5c02470 · 被引用次数:6 · 研究领域:Advanced Photocatalysis Techniques、Advanced Nanomaterials in Catalysis、Gas Sensing Nanomaterials and Sensors
Interfacial electron transfer between an inorganic semiconductor and a metal–organic framework (MOF) is the key to photocatalysis in a composite photocatalytic system. The construction of structural defects in a single semiconductor or MOF has been regarded as an effective method for enhancing its photocatalytic performance. However, how the microenvironment modulation of photocatalytic sites between defective semiconductors and defective MOFs (quasi-MOFs) affects photocatalytic disinfection activity is worth studying. Herein, the integration of MOFs and semiconductors and their crystal defect construction is achieved by directly dropping ZIF-8 suspension onto the bismuth vanadate (BiVO 4 ) nanoarray and subsequently activating it through low-temperature (300 °C) calcination under an N 2 atmosphere. Compared with the original BiVO 4 nanoarray, defective BiVO 4 nanoarray (BiVO 4 -N 2 ), and BiVO 4 -ZIF-8 nanoarray, (BiVO 4 -ZIF-8)-N 2 exhibits enhanced photocatalytic disinfection activity (6.63 log 10 CFU mL –1 after 4 h of simulated sunlight irradiation) due to its improved sluggish kinetics of electron transfer. In situ irradiated operando near-ambient pressure XPS (NAP-XPS) confirms its interfacial electron transfer, which can greatly modulate the microenvironment of the photocatalytic site and thus lead to efficient photocatalysis. This work presents a simple strategy to adjust the microenvironment of the photocatalytic sites between ZIF-8 and semiconductors to optimize ph...