TY - JOUR
T1 - Constructing ambivalent imidazopyridinium-linked covalent organic frameworks
AU - Li, Xing
AU - Zhang, Kun
AU - Wang, Gang
AU - Yuan, Yijia
AU - Zhan, Gaolei
AU - Ghosh, Tanmay
AU - Wong, Walter P. D.
AU - Chen, Fangzheng
AU - Xu, Hai-Sen
AU - Mirsaidov, Utkur
AU - Xie, Keyu
AU - Lin, Junhao
AU - Loh, Kian Ping
PY - 2022/5
Y1 - 2022/5
N2 - Covalent organic frameworks (COFs) are dynamic covalent porous organic materials synthesized from molecular organic building blocks. However, the chemical linkages used to construct COFs are limited by the dynamic bond formation needed to ensure crystallinity. Thus, there is a continual search for new, chemically stable linkages that tailor both the chemical properties and topologies of COFs. As opposed to electrophilic linkages used to construct COFs, nucleophilic linkages that can react with electron-deficient species are rare. Here we report the synthesis of picolinaldehyde-derived imine-linked COFs that can be transformed into imidazopyridinium-linked COFs (IP-COFs) with a Lieb-like lattice. IP-COFs serve as precursors to ambivalent N-heterocyclic carbenes that can dissociate disulfide bonds to form carbon–sulfur bonds. IP-COFs exhibit a vastly improved sulfur redox chemistry when used as cathode materials in lithium–sulfur batteries, as they achieve a rate performance of 540 mAh g−1 (10 C) and a high areal capacity of 6.2 mAh cm−2 with a high sulfur loading of 9 mg cm−2 and a low electrolyte-to-sulfur ratio of 6 µl mg−1. In addition, the ionicity of the linkages enables the cleavage of IP-COFs into highly crystalline flakes with well-defined fringes, as resolved by atomic force microscopy and transmission electron microscopy. [Figure not available: see fulltext.] © 2022, The Author(s), under exclusive licence to Springer Nature Limited.
AB - Covalent organic frameworks (COFs) are dynamic covalent porous organic materials synthesized from molecular organic building blocks. However, the chemical linkages used to construct COFs are limited by the dynamic bond formation needed to ensure crystallinity. Thus, there is a continual search for new, chemically stable linkages that tailor both the chemical properties and topologies of COFs. As opposed to electrophilic linkages used to construct COFs, nucleophilic linkages that can react with electron-deficient species are rare. Here we report the synthesis of picolinaldehyde-derived imine-linked COFs that can be transformed into imidazopyridinium-linked COFs (IP-COFs) with a Lieb-like lattice. IP-COFs serve as precursors to ambivalent N-heterocyclic carbenes that can dissociate disulfide bonds to form carbon–sulfur bonds. IP-COFs exhibit a vastly improved sulfur redox chemistry when used as cathode materials in lithium–sulfur batteries, as they achieve a rate performance of 540 mAh g−1 (10 C) and a high areal capacity of 6.2 mAh cm−2 with a high sulfur loading of 9 mg cm−2 and a low electrolyte-to-sulfur ratio of 6 µl mg−1. In addition, the ionicity of the linkages enables the cleavage of IP-COFs into highly crystalline flakes with well-defined fringes, as resolved by atomic force microscopy and transmission electron microscopy. [Figure not available: see fulltext.] © 2022, The Author(s), under exclusive licence to Springer Nature Limited.
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U2 - 10.1038/s44160-022-00071-y
DO - 10.1038/s44160-022-00071-y
M3 - RGC 21 - Publication in refereed journal
SN - 2731-0582
VL - 1
SP - 382
EP - 392
JO - Nature Synthesis
JF - Nature Synthesis
IS - 5
ER -