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通过光催化过一硫酸盐活化去除双酚污染物,具有修饰的C-O能带结构、宽光谱响应且电子密度增强的氮化碳

C-O band structure modified broad spectral response carbon nitride with enhanced electron density in photocatalytic peroxymonosulfate activation for bisphenol pollutants removal.

作者信息

Tong Chun, Jing Liquan, Xie Meng, He Minqiang, Liu Ying, Yuan Junjie, Song Yanhua, Xu Yuanguo

机构信息

School of Chemistry and Chemical Engineering, School of Pharmacy, Jiangsu University, Zhenjiang 212013, PR China.

School of Agricultural Equipment Engineering Institute of Agricultural Engineering, Jiangsu University, Zhenjiang 212013, PR China.

出版信息

J Hazard Mater. 2022 Jun 15;432:128663. doi: 10.1016/j.jhazmat.2022.128663. Epub 2022 Mar 11.

Abstract

Here, a simple one-step calcination method uses glycolic acid (GA) and urea to synthesize C-O band structure modified carbon nitride with broad spectral response, which is used to construct a peroxymonosulfate/visible light (PMS/vis) system. The solid-state C NMR proved that C-O band structure was successfully introduced into the carbon nitride. Density functional theory (DFT) calculation show that the introduction of C-O band structure shortens the band gap of 0.05 g GA modified CN (0.05 GA-CN). Besides, Ultraviolet photoelectron spectroscopy (UPS) further illustrate that the 0.05 GA-CN has a higher charge density and promotes the degradation of pollutants. In PMS/vis system, 0.05 GA-CN can completely degrade bisphenol A (BPA) within 36 min. In addition, 0.05 GA-CN can also degrade bisphenol E (BPE) and bisphenol F (BPF). The cyclic voltammetry (CV) curve show that the introduction of C-O band structure enhances the activation ability of PMS. At the same time, 0.05 GA-CN/PMS has enhanced the activity of degrading BPA under blue light (450-462 nm), green light (510-520 nm) and red light (610-625 nm). This research provides a new method to synthesize carbon nitride with enhanced electron density for degradation of bisphenol pollutants in PMS/vis system.

摘要

在此,一种简单的一步煅烧方法利用乙醇酸(GA)和尿素合成具有宽光谱响应的C-O带结构修饰的氮化碳,用于构建过一硫酸盐/可见光(PMS/vis)体系。固态碳核磁共振证明C-O带结构成功引入到氮化碳中。密度泛函理论(DFT)计算表明,C-O带结构的引入使0.05 g GA修饰的CN(0.05 GA-CN)的带隙缩短。此外,紫外光电子能谱(UPS)进一步表明,0.05 GA-CN具有更高的电荷密度并促进污染物的降解。在PMS/vis体系中,0.05 GA-CN可在36分钟内完全降解双酚A(BPA)。此外,0.05 GA-CN还可降解双酚E(BPE)和双酚F(BPF)。循环伏安(CV)曲线表明,C-O带结构的引入增强了PMS的活化能力。同时,0.05 GA-CN/PMS在蓝光(450-462 nm)、绿光(510-520 nm)和红光(610-625 nm)下增强了降解BPA的活性。本研究提供了一种合成具有增强电子密度的氮化碳的新方法,用于在PMS/vis体系中降解双酚类污染物。

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