Song Zhenyang, Xu Yuting, Zhang Mengyuan, Zhu Wei, Yang Xudong, Hao Di, Li Qing
College of Environmental and Chemical Engineering, Xi'an Polytechnic University, Xi'an, 710048, China.
College of Environmental and Chemical Engineering, Xi'an Polytechnic University, Xi'an, 710048, China.
J Colloid Interface Sci. 2025 Jan;677(Pt A):346-358. doi: 10.1016/j.jcis.2024.07.140. Epub 2024 Jul 19.
Hexavalent chromium, recognized as one of the most toxic heavy metals, demands the development of advanced materials capable of both adsorption and photocatalysis for effective Cr (VI) removal.
This study successfully synthesized a two-dimensional zinc porphyrin covalent organic framework (ZnPor-COF) via a solvent-based method. Performance evaluations have demonstrated that the ZnPor-COF possesses outstanding capabilities for the adsorptive and/or photocatalytic elimination of Cr (VI). Particularly noteworthy is the observation that when adsorption and photocatalysis are coupled, the ZnPor-COF attains an exceptional 99.7 % removal rate for a Cr (VI) concentration of 30 mg/L within just 60 min, with minimal susceptibility to coexisting ions. After five consecutive cycles, the material sustains a removal efficiency of 90 %, indicative of its robust cyclability.
Theoretical calculations, as well as experimental validations, have indicated that the integration of Zn ions into the porphyrin COF not only results in an expanded specific surface area and an increased count of adsorption sites but also significantly improves the COF's photosensitivity and the capability for charge carrier separation. Furthermore, the core of the synergistic effect between adsorption and photocatalysis lies in the ability of photocatalysis to substantially augment the adsorption process.
六价铬被认为是毒性最强的重金属之一,需要开发能够同时进行吸附和光催化的先进材料,以有效去除Cr(VI)。
本研究通过溶剂法成功合成了二维锌卟啉共价有机框架(ZnPor-COF)。性能评估表明,ZnPor-COF在吸附和/或光催化去除Cr(VI)方面具有出色的能力。特别值得注意的是,当吸附和光催化结合时,ZnPor-COF在60分钟内对30mg/L的Cr(VI)浓度实现了高达99.7%的去除率,且对共存离子的敏感性极低。经过连续五个循环后,该材料仍保持90%的去除效率,表明其具有强大的循环性能。
理论计算以及实验验证表明,锌离子融入卟啉COF不仅导致比表面积扩大和吸附位点数量增加,还显著提高了COF的光敏性和电荷载流子分离能力。此外,吸附和光催化协同效应的核心在于光催化能够大幅增强吸附过程。