Zhang Zongwen, Zhang Yi, Han Huili, Ikreedeegh Riyadh Ramadhan, Shah Syed Shoaib Ahmad, Tayyab Muhammad
Analysis and Testing Center, Xinyang Normal University, Xinyang, Henan, China.
Key Laboratory of Green and Precise Synthetic Chemistry, Department of Chemistry, Ministry of Education, Huaibei Normal University, Huaibei, Anhui, China.
Front Chem. 2025 Jan 16;12:1519370. doi: 10.3389/fchem.2024.1519370. eCollection 2024.
Bisphenol A (BPA) poses a significant environmental threat due to its widespread use as an industrial chemical and its classification as an environmental endocrine disruptor. The urgent need for effective BPA removal has driven research toward innovative solutions. In this study, we present the synthesis and application of a novel 2D-3D spherically hierarchical ZnInS (ZIS) photocatalyst for the photocatalytic degradation of BPA under visible light for the first time. Compared to the conventional g-CN photocatalyst, ZIS exhibits enhanced optical and electrical properties, leading to remarkable photocatalytic performance, with an apparent reaction rate constant of 2.36 h⁻, 6.56 times greater than that of g-CN. This efficacy allows for the degradation of 99.9% of BPA in just 2 h. The photocatalytic mechanism of ZIS was elucidated through various material characterizations and photoelectrochemical assessments, demonstrating improved light absorption and efficient charge separation as key factors facilitating BPA degradation. Notably, ZIS maintains high photocatalytic activity and stability over multiple cycles, indicating its potential as a sustainable photocatalyst. These findings not only contribute to the development of efficient photocatalysts for environmental remediation but also underscore the significant role of ZnInS in photocatalysis and solar energy conversion.
双酚A(BPA)作为一种工业化学品被广泛使用,并被归类为环境内分泌干扰物,对环境构成了重大威胁。对有效去除双酚A的迫切需求推动了对创新解决方案的研究。在本研究中,我们首次展示了一种新型二维-三维球形分级结构的ZnInS(ZIS)光催化剂的合成及其在可见光下对双酚A的光催化降解应用。与传统的g-CN光催化剂相比,ZIS表现出增强的光学和电学性能,从而具有卓越的光催化性能,其表观反应速率常数为2.36 h⁻¹,比g-CN高6.56倍。这种高效性使得在短短2小时内就能降解99.9%的双酚A。通过各种材料表征和光电化学评估阐明了ZIS的光催化机理,表明改善的光吸收和有效的电荷分离是促进双酚A降解的关键因素。值得注意的是,ZIS在多个循环中保持高光催化活性和稳定性,表明其作为可持续光催化剂的潜力。这些发现不仅有助于开发用于环境修复的高效光催化剂,也突出了ZnInS在光催化和太阳能转换中的重要作用。