Luo Siyu, Yan Qianqian, Wang Shenglin, Hu Hui, Xiao Songtao, Su Xiaofang, Xu Huanjun, Gao Yanan
Key Laboratory of Ministry of Education for Advanced Materials in Tropical Island Resources, Hainan University, No. 58, Renmin Avenue, Haikou 570228, China.
China Institute of Atomic Energy, Beijing 102413, China.
ACS Appl Mater Interfaces. 2023 Oct 4;15(39):46408-46416. doi: 10.1021/acsami.3c10786. Epub 2023 Sep 25.
Radioactive iodine from nuclear waste poses a huge threat to public safety and raises concerns about environmental pollution. There is thus a growing demand for developing novel adsorbents for highly effective iodine capture. In this work, we design and synthesize three novel conjugated microporous polymers, namely, TPE-PyTTA-CMP, TPE-TAPP-CMP, and TPE-TPDA-CMP, which are constructed by an imidization reaction based on octet and tetratopic linkers. The iodine vapor adsorption experiments show that the three CMPs have an excellent iodine adsorption capacity as high as 3.10, 3.67, and 4.68 g·g under 348 K and ambient pressure conditions, respectively. The adsorbed iodine in the CMPs can be released into methanol in a dramatically rapid manner, and their excellent iodine adsorption performance can still be maintained after multiple cycles. In addition, the CMPs demonstrate good adsorption performance in an -hexane solution of iodine, and the kinetic experimental data follow the pseudo-second-order model. The hierarchical porosity, extended π-conjugated skeleton, and rich electron-donor nitrogen sites of the CMPs could contribute to their excellent iodine adsorption performance. The knowledge information obtained in this work could open up new possibilities for designing novel CMPs targeting a wide range of environment-related applications.
核废料中的放射性碘对公众安全构成巨大威胁,并引发了对环境污染的担忧。因此,开发用于高效捕获碘的新型吸附剂的需求日益增长。在这项工作中,我们设计并合成了三种新型共轭微孔聚合物,即TPE-PyTTA-CMP、TPE-TAPP-CMP和TPE-TPDA-CMP,它们是通过基于八隅体和四连接体的酰亚胺化反应构建的。碘蒸气吸附实验表明,在348 K和常压条件下,这三种共轭微孔聚合物分别具有高达3.10、3.67和4.68 g·g的优异碘吸附容量。共轭微孔聚合物中吸附的碘可以以极快的速度释放到甲醇中,并且在多次循环后仍能保持其优异的碘吸附性能。此外,共轭微孔聚合物在碘的正己烷溶液中表现出良好的吸附性能,动力学实验数据符合准二级模型。共轭微孔聚合物的分级孔隙率、扩展的π共轭骨架和丰富的供电子氮位点有助于其优异的碘吸附性能。这项工作中获得的知识信息可为设计针对广泛环境相关应用的新型共轭微孔聚合物开辟新的可能性。