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构建具有密集噻吩硫位点的共价有机框架用于高效碘捕获。

Constructing covalent organic frameworks with dense thiophene S sites for effective iodine capture.

作者信息

Ran Yiling, Wang Yi, Yang Man, Li Jian, Zhang Yan, Li Zhanguo

机构信息

School of Chemistry, Southwest Jiaotong University Chengdu Sichuan 610031 China

School of Life Science and Engineering, Southwest Jiaotong University Chengdu Sichuan 610031 China.

出版信息

RSC Adv. 2024 Oct 15;14(44):32451-32459. doi: 10.1039/d4ra06333c. eCollection 2024 Oct 9.

Abstract

Developing versatile sorption materials for radionuclides ( iodine) capture has been a critical goal in nuclear energy and environmental science. At the same time, covalent organic frameworks (COFs), on account of their high porosity and functional scaffolds, have opened up a new way to develop adsorbents in recent years. Herein, two kinds of COF materials containing thiophene (TAPT-COF and TAB-COF), as iodine sorbents, are designed and synthesized by Schiff base reaction. Among them, TAB-COF has a higher surface area (TAPT-COF: 1141 m g, TAB-COF: 1378 m g), which is helpful for the physical iodine adsorption. More importantly, the COF backbone is rich in both N and S sites, which is advantageous to the chemical adsorption of iodine. These two features make the two COFs ideal iodine sorption materials. For example, TAB-COF has an excellent gaseous iodine adsorption capacity (2.81 g g) and is one of the most efficient iodine adsorption materials. Meanwhile, TAB-COF has an excellent adsorption effect on iodine in the cyclohexane system, which can reach 200 mg g. In addition, the DFT calculations proved that both imine N and thiophene S serve as active sites during the iodine adsorption. TAB-COF exposes more active sites on the premise of having a higher surface area, thereby leading to a higher iodine adsorption capacity. The results here indicate improved sorption efficacy by introducing thiophene in COFs for sorption applications in general and especially pave the way for developing stable and effective COF sorbents for iodine capture from various environments.

摘要

开发用于捕获放射性核素(碘)的多功能吸附材料一直是核能和环境科学领域的关键目标。与此同时,共价有机框架(COF)由于其高孔隙率和功能性支架,近年来为开发吸附剂开辟了一条新途径。在此,通过席夫碱反应设计并合成了两种含噻吩的COF材料(TAPT-COF和TAB-COF)作为碘吸附剂。其中,TAB-COF具有更高的比表面积(TAPT-COF:1141 m²/g,TAB-COF:1378 m²/g),这有助于碘的物理吸附。更重要的是,COF骨架富含N和S位点,有利于碘的化学吸附。这两个特性使这两种COF成为理想的碘吸附材料。例如,TAB-COF具有出色的气态碘吸附容量(2.81 g/g),是最有效的碘吸附材料之一。同时,TAB-COF在环己烷体系中对碘具有出色的吸附效果,可达200 mg/g。此外,DFT计算证明,在碘吸附过程中,亚胺N和噻吩S均作为活性位点。TAB-COF在具有更高比表面积的前提下暴露了更多的活性位点,从而导致更高的碘吸附容量。此处的结果表明,通过在COF中引入噻吩,总体上提高了吸附效率,尤其为开发用于从各种环境中捕获碘的稳定且有效的COF吸附剂铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a975/11477706/558153d210ed/d4ra06333c-s1.jpg

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