肖特基势垒
光催化
降级(电信)
电场
材料科学
量子点
碳量子点
碳纤维
肖特基二极管
喹诺酮类
光电子学
纳米技术
化学
抗生素
复合材料
电子工程
物理
工程类
催化作用
有机化学
复合数
二极管
量子力学
生物化学
作者
Linxing Wang,Jing Sun,Jian‐Wen Shi,T. C. Huang,Kun Liu,Zhangfa Tong,Hanbing Zhang
标识
DOI:10.1016/j.cej.2024.157168
摘要
• CQDs electronic bridges reinforced built-in electric field driving force. • CQDs as interface layer effectively modulated Schottky barrier height. • Bi–O–C and Ti–O–C chemical bonds provided fast electron transfer channels. • BiOBr/CQDs/Ti 3 C 2 exhibited excellent photocatalytic removal for FQs antibiotics. Schottky junction-based photocatalysts formed by metal-semiconductor contact are attractive, but their photocatalytic performance is limited by poor built-in electric field (IEF) driving force and excessive Schottky barrier height (SBH). A prospective strategy for efficient charge transfer is modulating interface gap states by inserting viable buffer layer. Herein, carbon quantum dots (CQDs) were inserted in BiOBr/Ti 3 C 2 Schottky heterojunction to form electronic bridges via Bi–O–C and Ti–O–C chemical bonds. The CQDs electronic bridges regulated charge spatial distribution, resulting in a 3.4-fold increased IEF, and facilitated efficient charge separation and transfer within BiOBr/CQDs/Ti 3 C 2 . The carrier lifetime of BiOBr/CQDs/Ti 3 C 2 had been extended to 2357.8 ps, increasing effectively charge carrier density. Besides, the reinforced interfacial interaction by Ti–C–O and Bi–C–O bonding significantly reduced the SBH from 2.02 eV to 1.77 eV within BiOBr/CQDs/Ti 3 C 2 , accelerating charge transport across the metal-semiconductor interface. Remarkably, BiOBr/CQDs/Ti 3 C 2 exhibited excellent photocatalytic degradation for multiple quinolone antibiotics (FQs), especially for Moxifloxacin (MOX, 96.1 %) within 120 min, which was 2.63, 2.48 and 1.84 times higher than that of BiOBr, BiOBr/CQDs and BiOBr/Ti 3 C 2 , respectively. Furthermore, the high environmental adaptability and recycle stability were revealed in BiOBr/CQDs/Ti 3 C 2 . This work provides a new strategy to construct electronic bridges in Schottky-based photocatalysts for enhancing photocatalytic activities.
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