Liu Minghao, Jiang Di, Fu Yubin, Zheng Chen George, Bi Shuai, Ding Xuesong, He Jun, Han Bao-Hang, Xu Qing, Zeng Gaofeng
CAS Key Laboratory of Low-Carbon Conversion Science and Engineering, Shanghai Advanced Research Institute (SARI), Chinese Academy of Sciences (CAS), Shanghai, 201210, P. R. China.
Department of Chemical and Environmental Engineering, University of Nottingham Ningbo China, Ningbo, 315199, P. R. China.
Angew Chem Int Ed Engl. 2024 Jan 2;63(1):e202317015. doi: 10.1002/anie.202317015. Epub 2023 Nov 29.
Covalent organic frameworks (COFs) have attracted considerable attention as adsorbents for capturing and separating gold from electronic wastes. To enhance the binding capture efficiency, constructing hydrogen-bond nanotraps along the pore walls was one of the most widely adopted approaches. However, the development of absorbing skeletons was ignored due to the weak binding ability of the gold salts (Au). Herein, we demonstrated skeleton engineering to construct highly efficiently absorbs for Au capture. The strong electronic donating feature of diarylamine units enhanced the electronic density of binding sites (imine-linkage) and thus resulted in high capacities over 1750 mg g for all three COFs. Moreover, the absorbing performance was further improved via the ionization of diarylamine units. The ionic COF achieved 90 % of the maximal adsorption capacity, 1.63 times of that from the charge-neutral COF within ten minutes, and showed remarkable uptakes of 1834 mg g , exceptional selectivity (97.45 %) and cycling stability. The theoretical calculation revealed the binding sites altering from imine bonds to ionic amine sites after ionization of the frameworks, which enabled to bind the AuCl via coulomb force and contributed to enhanced absorbing kinetics. This work inspires us to design molecular/ionic capture based on COFs.
共价有机框架(COFs)作为从电子废物中捕获和分离金的吸附剂受到了广泛关注。为了提高结合捕获效率,沿孔壁构建氢键纳米陷阱是最广泛采用的方法之一。然而,由于金盐(Au)的结合能力较弱,吸收骨架的发展被忽视了。在此,我们展示了骨架工程以构建用于捕获Au的高效吸收剂。二芳基胺单元的强给电子特性增强了结合位点(亚胺键)的电子密度,因此所有三种COF的容量都超过了1750 mg g。此外,通过二芳基胺单元的离子化进一步提高了吸收性能。离子型COF在十分钟内达到了最大吸附容量的90%,是电荷中性COF的1.63倍,并且表现出1834 mg g的显著吸收量、出色的选择性(97.45%)和循环稳定性。理论计算表明,框架离子化后结合位点从亚胺键转变为离子胺位点,这使得能够通过库仑力结合AuCl 并有助于提高吸收动力学。这项工作启发我们设计基于COFs的分子/离子捕获。