Research Center for Environmental Health Technology, Iran University of Medical Sciences, Tehran, Iran; Department of Environmental Health Engineering, School of Public Health, Iran University of Medical Sciences, Tehran, Iran.
Department of Environmental Health Engineering, School of Public Health, Tehran University of Medical Sciences, Tehran, Iran.
J Environ Manage. 2023 Jan 15;326(Pt A):116584. doi: 10.1016/j.jenvman.2022.116584. Epub 2022 Nov 17.
In this study, the photocatalytic activity of ZnO was effectively improved via its combination with spinel cobalt ferrite (SCF) nanoparticles. The catalytic performance of ZnO@SCF (ZSCF) was investigated in coupling with UV irradiation and ultrasound (US), as a heterogeneous sono-photocatalytic process, for the decontamination of phenanthrene (PHE) from contaminated soil. Soil washing tests were conducted in a batch environment, after extraction assisted by using Tween 80. Several characterization techniques such as XRD, FESEM-EDS, BET, TEM, UV-vis DRS, PL and VSM were utilized to determine the features of the as-prepared catalysts. ZSCF showed an excellent catalytic activity toward degradation of PHE in the presence of US and UV with a significant synergic effect. It was found that more than 93% of PHE (35 mg/L) and 87.5% of TOC could be eliminated by the integrated ZSCF/US/UV system under optimum operational conditions (pH: 8.0, ZSCF: 1.5 g/L, UV power: 6.0 W and US power: 70 W) within 90 min of reaction. After five times of use, ZSCF illustrated good reusability in the decontamination of PHE (87%) and TOC (79%). Quenching tests revealed the contribution of h, HO and e species during PHE degradation over ZSCF/UV/US and an S-scheme photocatalytic mechanisms was proposed for the possible charge transfer routes under the ZSCF system. This study provides the important role of SCF in enhancing the ZnO photocatalytic activity due to its high performance, easy recovery and excellent durability, which it make an efficient and promising catalyst in environmental clean-up applications.
在这项研究中,通过将氧化锌与尖晶石钴铁氧体(SCF)纳米粒子结合,有效地提高了氧化锌的光催化活性。研究了 ZnO@SCF(ZSCF)在耦合紫外光照射和超声(US)条件下的催化性能,作为一种非均相声光电催化过程,用于受污染土壤中菲(PHE)的去除。在使用 Tween 80 辅助提取后,在批处理环境中进行了土壤洗涤测试。使用 XRD、FESEM-EDS、BET、TEM、UV-vis DRS、PL 和 VSM 等几种表征技术来确定所制备催化剂的特性。ZSCF 在 US 和 UV 的存在下表现出对 PHE 降解的优异催化活性,具有显著的协同效应。结果发现,在最佳操作条件下(pH:8.0、ZSCF:1.5 g/L、UV 功率:6.0 W 和 US 功率:70 W),集成的 ZSCF/US/UV 系统可在 90 min 内去除 93%以上的 PHE(35 mg/L)和 87.5%的 TOC。经过五次使用后,ZSCF 在 PHE(87%)和 TOC(79%)的去除中表现出良好的可重复使用性。猝灭实验表明,在 ZSCF/UV/US 降解 PHE 过程中 h、HO 和 e 物种的贡献,并提出了 ZSCF 体系下可能的电荷转移途径的 S 型光催化机制。本研究表明,由于 SCF 具有高性能、易于回收和优异的耐久性,在环境净化应用中是一种高效、有前途的催化剂,因此在提高 ZnO 的光催化活性方面具有重要作用。