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Superhydrophilic All-pH-Adaptable Redox Conjugated Porous Polymers as Universal and Ultrarobust Ion Hosts for Diverse Energy Storage with Chemical Self-Chargeability
Zhong, Linfeng1; Li, Jing1,4; Liu, Cong1; Fang, Long1; Yuan, Zhongke2,3; Yu, Dingshan1,3; Chen, Xudong1,2,3
2023-03-06
Source PublicationAdvanced Functional Materials
ISSN1616-301X
Volume33Issue:24Pages:2215133
Abstract

Herein, a new fibrous conjugated microporous polymer bearing phenazine species (PNZ-CMP) is reported as a universal and ultrastable electrode to host various mono- and multi-valent charge carriers for diverse aqueous rechargeable cells combining rapid kinetics, ultralong lifespan, and chemical rechargeability. The porous cross-linked structure, interconnected donor-acceptor network, and readily accessible active sites endow PNZ-CMP with highly-reversible redox activity, superhydrophilicity, facile electron transport, high ion diffusion coefficient, and all-pH-adaptability (−1 to 15) in aqueous electrolytes. Thus, adopting PNZ-CMP electrodes enables good compatibility with H/Li/Na/K/Zn/Al ions and fast surface-controlled redox reactions for diverse aqueous battery chemistry. Multiple PNZ-CMP-based full cells show superior electrochemical performance especially ultralong lifespan, e.g., ≈84% capacity retention over 200 days for K, ≈100% over 127 days for Zn, and ≈76% over 47 days for anion-coordinated Al ions, surpassing small molecule counterparts and most previously-reported corresponding systems. The spontaneous redox chemistry of reduced phenazine species with O is first explored to render PNZ-CMP with repeatable chemical self-chargeability in four electrolytes. Especially in 0.05 m HSO, an accumulative discharge capacity up to 48505 mAh g is achieved via facile self-charging, which can originate from the “reactive antiaromaticity to stable aromaticity” conversion of the redox moieties as revealed by theoretical studies.

KeywordAqueous Rechargeable Batteries Chemical Charging Conjugated Microporous Polymers Organic Electrodes Polymer Electrodes
DOI10.1002/adfm.202215133
URLView the original
Indexed BySCIE
Language英語English
WOS Research AreaChemistry ; Science & Technology - Other Topics ; Materials Science ; Physics
WOS SubjectChemistry, Multidisciplinary ; Chemistry, Physical ; Nanoscience & Nanotechnology ; Materials Science, Multidisciplinary ; Physics, Applied ; Physics, Condensed Matter
WOS IDWOS:000943751300001
PublisherWILEY-V C H VERLAG GMBH, POSTFACH 101161, 69451 WEINHEIM, GERMANY
Scopus ID2-s2.0-85149511915
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Document TypeJournal article
CollectionINSTITUTE OF APPLIED PHYSICS AND MATERIALS ENGINEERING
Corresponding AuthorYu, Dingshan; Chen, Xudong
Affiliation1.Key Laboratory for Polymeric Composite and Functional Materials of Ministry of Education, Key Laboratory of High-Performance Polymer-based Composites of Guangdong Province, School of Chemistry, Sun Yat-sen University, Guangzhou, 510006, China
2.School of Chemical Engineering and Light Industry, Guangdong University of Technology, Guangzhou, 510006, China
3.Jieyang Branch of Chemistry and Chemical Engineering Guangdong Laboratory, Jieyang, 515200, China
4.Guangdong-Hong Kong-Macau Joint Laboratory for Photonic-Thermal-Electrical Energy Materials and Devices, Institute of Applied Physics and Materials Engineering, University of Macau, Avenida da Universidade, Taipa, SAR, 999078, Macao
Recommended Citation
GB/T 7714
Zhong, Linfeng,Li, Jing,Liu, Cong,et al. Superhydrophilic All-pH-Adaptable Redox Conjugated Porous Polymers as Universal and Ultrarobust Ion Hosts for Diverse Energy Storage with Chemical Self-Chargeability[J]. Advanced Functional Materials, 2023, 33(24), 2215133.
APA Zhong, Linfeng., Li, Jing., Liu, Cong., Fang, Long., Yuan, Zhongke., Yu, Dingshan., & Chen, Xudong (2023). Superhydrophilic All-pH-Adaptable Redox Conjugated Porous Polymers as Universal and Ultrarobust Ion Hosts for Diverse Energy Storage with Chemical Self-Chargeability. Advanced Functional Materials, 33(24), 2215133.
MLA Zhong, Linfeng,et al."Superhydrophilic All-pH-Adaptable Redox Conjugated Porous Polymers as Universal and Ultrarobust Ion Hosts for Diverse Energy Storage with Chemical Self-Chargeability".Advanced Functional Materials 33.24(2023):2215133.
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