Green Separation & Chemical Process Safety Lab, School of Chemical Engineering and Technology, Tianjin University, Tianjin, 300072, PR China.
Green Separation & Chemical Process Safety Lab, School of Chemical Engineering and Technology, Tianjin University, Tianjin, 300072, PR China.
Environ Res. 2024 Jan 15;241:117653. doi: 10.1016/j.envres.2023.117653. Epub 2023 Nov 18.
When confronted with wastewater that is characterized by complex composition, stable molecular structure, and high concentration, relying solely on photocatalytic technology proves inadequate in achieving satisfactory degradation results. Therefore, the integration of other highly efficient degradation techniques has emerged as a viable approach to address this challenge. Herein, a novel strategy was employed whereby the exfoliated g-CN nanosheets (CNs) with exceptional photocatalytic performance, were intimately combined with porous rod-shaped cobalt ferrite (CFO) through a co-calcination process to form the composite CFO/CNs, which exhibited remarkable efficacy in the degradation of various organic pollutants through the combination of photocatalysis and Fenton-like process synergistically, exemplified by the representative case of tetracycline hydrochloride (TCH, 200 mL, 50 mg/L). Specifically, under 1 mM of peroxymonosulfate (PMS) and illumination conditions, 50 mg of 1CFO/9CNs achieved a TCH removal ratio of ∼90% after 60 min of treatment. Furthermore, this work comprehensively investigated the influence of various factors, including catalyst and PMS dosages, solution pH, and the presence of anions and humate, on the degradation efficiency of pollutants. Besides, quenching experiments and EPR tests confirmed the establishment of an S-scheme heterojunction between CNs and CFO, which facilitated the effective spatial separation of photoexcited charge carriers and preserved the potent redox potential of photogenerated electrons and holes. This work offers a valuable reference for the integration of photocatalysis with the PMS-based Fenton-like process.
当面对组成复杂、分子结构稳定且浓度高的废水时,仅依靠光催化技术不足以达到令人满意的降解效果。因此,将其他高效降解技术集成在一起已成为应对这一挑战的可行方法。在此,采用了一种新策略,即将具有优异光催化性能的剥离 g-CN 纳米片(CNs)通过共煅烧过程与多孔棒状钴铁氧体(CFO)紧密结合,形成复合 CFO/CNs,通过光催化和类 Fenton 过程的协同作用,在降解各种有机污染物方面表现出显著的效果,以盐酸四环素(TCH,200 mL,50 mg/L)为例。具体而言,在 1 mM 过一硫酸盐(PMS)和光照条件下,50 mg 1CFO/9CNs 在 60 min 的处理后,TCH 的去除率约为 90%。此外,本工作全面研究了各种因素对污染物降解效率的影响,包括催化剂和 PMS 用量、溶液 pH 值以及阴离子和腐殖质的存在。此外,猝灭实验和 EPR 测试证实了 CNs 和 CFO 之间建立了 S 型异质结,这有利于光生载流子的有效空间分离,并保留了光生电子和空穴的强氧化还原电位。这项工作为将光催化与基于 PMS 的类 Fenton 过程相结合提供了有价值的参考。