Design of Carbon Quantum Dots/CdS/Ta3N5 S-Scheme Heterojunction Nanofibers for Efficient Photocatalytic Antibiotic Removal

量子点 光催化 碳量子点 异质结 材料科学 方案(数学) 纳米技术 化学 光电子学 数学 催化作用 数学分析 生物化学
作者
Shijie Li,Ke Rong,Xiaoqin Wang,Chuqi Shen,Fang Yang,Qinghong Zhang
出处
期刊:Acta Physico-chimica Sinica [Peking University Press]
卷期号:40 (12): 2403005-2403005 被引量:133
标识
DOI:10.3866/pku.whxb202403005
摘要

Photocatalytic pollutant removal provides a competitive manner for wastewater purification . The exploration of efficient and durable photocatalysts is significant for this technique. Integrating carbon quantum dots and S-scheme junction into one system represents an effective strategy for achieving the outstanding photocatalytic efficacy. In comparison to S-scheme junction, photocatalysts combining carbon quantum dots and S-scheme junction harness the merits of both, thus holding greater potential. Herein, a multicomponent fibrous photocatalyst of carbon quantum dots/CdS/Ta 3 N 5 that incorporates S-scheme heterojunction and carbon quantum dots is developed for high-efficient destruction of levofloxacin antibiotic . The as-prepared carbon quantum dots/CdS/Ta 3 N 5 heterojunction nanofibers manifest a significantly strengthened photocatalytic levofloxacin degradation activity, with the rate constant (0.0404 min −1 ) exceeding Ta 3 N 5 , CdS/Ta 3 N 5 , and CdS by 39.4, 2.1, and 7.2 folds. Such remarkable photocatalytic performance is credited to the unique 1D/0D/0D core-shell heterostructure with compact-bound hetero-interface, which favors the synergistic effect between carbon quantum dots modification and S-scheme junction. This work offers a new way for developing new Ta 3 N 5 -based heterojunctions for environmental remediation. A multicomponent fibrous photocatalyst of carbon quantum dots/CdS/Ta 3 N 5 that incorporates S-scheme heterojunction and carbon quantum dots is developed for high-efficient destruction of levofloxacin antibiotic.
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