电荷转移性能优异的 BaTiO3/I@g-C3N4 Z 型异质结用于高效光催化抗生素废水处理

IF 1.9 4区 化学 Q3 CHEMISTRY, MULTIDISCIPLINARY ChemistrySelect Pub Date : 2024-11-25 DOI:10.1002/slct.202403270
Prof. Amit Kumar, Pankaj Sharma, Dr. Tongtong Wang, Prof. Gaurav Sharma, Dr. Pooja Dhiman, Dr. Akshay Verma, Prof. Hui Shi
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引用次数: 0

摘要

探索共轭有机聚合物与金属基半导体之间形成异质结,促进电荷转移和有效的空间电荷分离,已被证明在加强光催化废水处理方面相当成功。针对水中磺胺类抗生素的去除,我们在本文中报告了 BaTiO3/I@g-C3N4 Z 型异质结光催化剂用于降解磺胺甲基嘧啶(SMZ)污染物的情况。优化的异质结 25ICN/BT 在 90 分钟内对 SMZ 的去除率高达 94.5%,在可见光条件下分别比 BT 和原始 I@g-C3N4 快近 11 倍和 5 倍。四周期实验证明了 25BT/ICN 具有良好的可重复性。光催化活性的显著提高得益于有效的 Z 型转移、减少的重组、高电荷转移能力和氧化还原能力。这一点已通过电化学实验和光致发光测量得到证实。此外,还通过液相色谱-质谱法检测了 SMZ 光催化氧化过程中形成的降解中间产物,并提出了合适的降解途径。异质结在河水、湖水、自来水以及其他抗生素污染物中都表现出优异的性能。自由基淬灭实验和能带结构分析推断出 -O2- 自由基是主要的活性物种。这项研究为分层异质结构出色地去除有害抗生素污染物提供了新的视角。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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BaTiO3/I@g-C3N4 Z-Scheme Heterojunctions With Superior Charge Transfer for Efficient Photocatalytic Antibiotic Wastewater Treatment

Exploring heterojunction formation between conjugated organic polymer and metal-based semiconductors with promoted charge transfer and efficient spatial charge separation has proven to be quite successful in reinforcing photocatalytic wastewater treatment. Focusing on the removal of sulfonamide antibiotics from water, herein, we report BaTiO3/I@g-C3N4 Z-scheme heterojunction photocatalyst for degradation of sulfamethazine (SMZ) pollutant. The optimized heterojunction 25ICN/BT exhibits superior 94.5% removal of SMZ in 90 min, which is nearly 11 and 5 times faster than BT and pristine I@g-C3N4 under visible light. The good repeatability of 25BT/ICN was proved by four-cycle experiments. The remarkable improvement in photocatalytic activity was due to effective Z-scheme transfer, diminished recombination, high charge transfer capacity, and redox capability. This was ascertained by electrochemical experiments and photoluminescence measurements. Furthermore, the degradation intermediates formed during the photocatalytic oxidation of SMZ were detected via liquid chromatography-mass spectrometry, and a suitable degradation pathway was suggested. The heterojunctions showed excellent performance in river, lake, and tap water and for other antibiotic pollutants. The radical quenching experiments and band structure analysis inferred O2 radicals as main active species. This work lays down new perspectives on hierarchical heterostructures for the superior removal of noxious antibiotic contaminants.

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来源期刊
ChemistrySelect
ChemistrySelect Chemistry-General Chemistry
CiteScore
3.30
自引率
4.80%
发文量
1809
审稿时长
1.6 months
期刊介绍: ChemistrySelect is the latest journal from ChemPubSoc Europe and Wiley-VCH. It offers researchers a quality society-owned journal in which to publish their work in all areas of chemistry. Manuscripts are evaluated by active researchers to ensure they add meaningfully to the scientific literature, and those accepted are processed quickly to ensure rapid online publication.
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