Efficient immobilization of TiO 2 on silk screens for enhanced photocatalytic wastewater treatment

光催化 催化作用 二氧化钛 废水 甲基橙 重新使用 材料科学 降级(电信) 化学工程 污水处理 涂层 流出物 制浆造纸工业 废物管理 化学 纳米技术 复合材料 有机化学 计算机科学 工程类 电信
作者
Daiane Marques de Oliveira,Ana Caroline Raimundini Aranha,Patrícia Hissae Yassue‐Cordeiro,Mara Heloísa Neves Olsen Scaliante,Marcos de Souza
出处
期刊:Journal of Chemical Technology & Biotechnology [Wiley]
卷期号:100 (8): 1656-1666 被引量:2
标识
DOI:10.1002/jctb.7896
摘要

Abstract BACKGROUND Advanced oxidative processes (AOPs) have emerged as a promising alternative for wastewater treatment, with photocatalysis standing out as a particularly effective approach. The use of titanium dioxide (TiO 2 ) as the primary photocatalyst is well‐established among researchers, especially in suspension. However, the challenge of separating the catalyst powder from the treated effluent has driven the development of immobilized catalyst systems. Immobilization facilitates catalyst reuse, provided that an adhesion method ensures strong attachment to the support material, preventing catalyst loss during repeated cycles. RESULTS AND CONCLUSION The study investigated the immobilization of TiO 2 on screens for photocatalytic processes, aiming for improved reuse and pollutant degradation efficiency. The wash‐coating method was used to test different supports and drying conditions. The best result was obtained with P25 TiO 2 immobilized on a silk screen and dried at 80 °C for 36 h, ensuring a uniform and adherent coating. Characterization by SEM, EDX, FTIR, and ATR confirmed the catalyst's presence, and the band‐gap value was consistent with the literature. The material achieved over 95% methyl orange degradation, with optimal performance at pH 4. Reuse tests showed high stability, maintaining efficiency after five cycles. Comparison with photolysis confirmed that photocatalysis was the primary degradation mechanism. The results highlight the effectiveness of immobilized TiO 2 on silk screens as a low‐cost and sustainable alternative for wastewater treatment. © 2025 Society of Chemical Industry (SCI).
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