生物炭
吸附
光催化
化学工程
去壳
热解
降级(电信)
锐钛矿
核化学
材料科学
化学
有机化学
催化作用
植物
电信
生物
工程类
计算机科学
作者
Trần Minh Khang,Trần Thị Bích Quyên,Huỳnh Vủ Thanh Lương,Ngô Nguyễn Trà My,Bùi Lê Anh Tuấn,Duy Toàn Phạm,Nguyen Thi Kim Lien,Đoàn Văn Hồng Thiện,Ngô Trương Ngọc
摘要
Abstract BACKGROUND The overuse of dyes is causing serious water pollution globally, becoming an urgent environmental problem. Consequently, studying dye wastewater treatment solutions has become a crucial research field. While durian husk biochar (BDH) is recognized for its excellent adsorption of organic molecules, studies on its combination with ZnO and TiO 2 nanoparticles (NPs) and enhancement of methylene blue (MB) degradation remain limited. RESULTS In this study, BDH/ZnO/TiO 2 NPs were synthesized via a hydrothermal method using ethanol and ammonia as solvents. BHD was produced through pyrolysis under oxygen‐limited conditions and activated with H 3 PO 4 to enhance its physicochemical properties. The resulting TiO 2 (anatase phase, 20–35 nm) and ZnO (wurtzite structure, 100–240 nm) were well dispersed on the porous biochar matrix, which exhibited increased porosity (14.761–34.143 Å) and surface area approximately 5.5 times higher than raw biochar. The photocatalytic and adsorption performance of the materials were evaluated under UV irradiation (365 nm, 100 min) using 10 ppm MB. The removal efficiency of BDH achieved 75.77%, significantly outperforming pure TiO 2 (58.52%) and ZnO (40.38%). The novel BDH/ZnO/TiO 2 nanocomposite exhibited superior capabilities, achieving 98.57% removal and maintaining over 95% efficiency after three regeneration cycles. The adsorption of MB by BDH/ZnO/TiO 2 best fits the Freundlich isotherm model, showing a maximum adsorption capacity of 52.21 mg g −1 . CONCLUSION These results highlight the dual functionality of BDH/ZnO/TiO 2 NPs in dye adsorption and photocatalytic degradation, confirming their potential in wastewater treatment. The study also emphasizes the environmental and economic benefits of valorizing agricultural waste into high‐performance, sustainable materials. © 2025 Society of Chemical Industry (SCI).
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