Adsorption-photocatalysis processes: The performance and mechanism of a bifunctional covalent organic framework for removing uranium ions from water

IF 6.3 2区 材料科学 Q2 CHEMISTRY, PHYSICAL
Xin Zhong, Zhenyu Ren, Qian Ling, Baowei Hu
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引用次数: 12

Abstract

Photocatalytic reaction could become an effective way to solve the energy crisis and environmental restoration and governance. Herein, we reported a covalent organic framework (COF-TpBpy) was connected by polyhydroxy-containing unit (Tp) and bipyridine unit (Bpy), which was utilized as photocatalytic semiconductor for photocatalytic detoxification of U(VI). Firstly, TpBpy was comprehensively characterized by physical chemistry (PXRD, SEM, TEM, FT-IR, BET, EA) and photoelectrochemistry (Vis-DRS, M-S plots, photocurrent-time, EIS, PL). Hereafter, the adsorption capacity of TpBpy for U(VI) was investigated by batch adsorption experiment, reaching 455 mg/g within 60 min. The adsorption experimental data conformed to the second-order kinetics, suggesting the chemisorption or surface complexation mechanism. Following that, TpBpy exhibited the narrower optical band gap (Eg = 2.2 V, ECB = -0.95 and EVB = 1.25 V vs. NHE) due to its extended π-conjugation system and electron-rich units of the skeleton (N-14.56%, O-27.73%). After visible light irradiation for 420 min, the photoreduction removal rate of U(VI) by TpBpy was about 55.4%. ESR spectra corroborated that O2 radicals and photoelectrons were the main active species involved in the photoreduction process. XPS analysis revealed the formation of NU bond and UO bond, whether in the process of adsorption or photoreduction. In short, the structure of TpBpy possessed strong coordination ability with U(VI) ions, and promoted the transfer of electrons from electron-rich groups to U(VI), thereby reducing to U(IV). As a multifunctional material, TpBpy possess the advantage in eliminating nuclear waste streams.

Abstract Image

吸附-光催化过程:双功能共价有机骨架去除水中铀离子的性能和机理
光催化反应可以成为解决能源危机和环境修复治理的有效途径。本文报道了一种由多羟基单元(Tp)和联吡啶单元(Bpy)连接的共价有机骨架(COF-TpBpy),作为光催化半导体用于U(VI)的光催化解毒。首先,通过物理化学(PXRD、SEM、TEM、FT-IR、BET、EA)和光电化学(Vis-DRS、M-S图、光电流时间、EIS、PL)对TpBpy进行了全面表征。随后,通过批量吸附实验考察了TpBpy对U(VI)的吸附量,在60 min内达到455 mg/g。吸附实验数据符合二级动力学,表明其吸附机理为化学吸附或表面络合。其次,TpBpy具有较窄的光学带隙(Eg = 2.2 V, ECB = -0.95, EVB = 1.25 V),这是由于其扩展的π共轭体系和骨架的富电子单元(N-14.56%, O-27.73%)。在可见光照射420 min后,TpBpy对U(VI)的光还原去除率约为55.4%。ESR谱证实了O2自由基和光电子是参与光还原过程的主要活性物质。XPS分析显示,无论是在吸附过程还是光还原过程中,都形成了NU键和UO键。总之,TpBpy的结构与U(VI)离子具有较强的配位能力,促进电子从富电子基团向U(VI)转移,从而还原为U(IV)。TpBpy作为一种多功能材料,在消除核废料流方面具有优势。
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来源期刊
Applied Surface Science
Applied Surface Science 工程技术-材料科学:膜
CiteScore
12.50
自引率
7.50%
发文量
3393
审稿时长
67 days
期刊介绍: Applied Surface Science covers topics contributing to a better understanding of surfaces, interfaces, nanostructures and their applications. The journal is concerned with scientific research on the atomic and molecular level of material properties determined with specific surface analytical techniques and/or computational methods, as well as the processing of such structures.
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