Water-chain mediated proton conductivity in mechanically flexible redox-active organic single crystals

TitleWater-chain mediated proton conductivity in mechanically flexible redox-active organic single crystals
Publication TypeJournal Article
Year of Publication2024
AuthorsHossain, MSahid, Ghosh, M, Mondal, A, Ajmal, P, Saha, M, C. Reddy, M, Kurungot, S, Bandyopadhyay, S
JournalJournal of Materials Chemistry A
Volume12
Issue10
Pagination5866-5874
Date PublishedMAR
Type of ArticleArticle
ISSN2050-7488
Abstract

Investigating electrochemical features of proton-conducting organic crystalline materials is relevant in developing efficient energy storage and conversion devices. However, the poor structural flexibility of the crystalline materials at the molecular level often impedes hydrogen bond reorganization of the proton carriers during proton migration, ultimately leading to low ionic conductivity. Here, we report crystals of azobenzene, functionalized with dipicolylamine at both ends (Azo-DPA), which contain an extended hydrogen-bonding network with water molecules in its structure. Interestingly, the crystals display remarkable mechanical flexibility explicitly probed by the nanoindentation technique. The mechanically flexible neutral organic crystals devoid of any acidic moieties (-COOH, -PO3H2, etc.) within the system, exhibit promising proton conductivity (1.63 x 10-4 S cm-1 at 30 degrees C under 95% relative humidity) which is almost 100 times better compared to the neutral organic systems reported to date. Mechanically flexible redox-active crystalline organic material (Azo-DPA) capable of impressive proton conduction was employed as an electrode material for the first time in an aqueous battery containing Zn2+ ions. The experimental and theoretical studies on the charge storage mechanism revealed the redox activity of the azo (-N 00000000 00000000 00000000 00000000 11111111 00000000 11111111 00000000 00000000 00000000 N-) centers involving reversible insertion/extraction of protons and Zn2+ ions. Ultimately, the electrode displayed a specific capacity similar to 49 mA h g-1 with almost 100% retention after 1400 cycles, encouraging the scope of redox-active organic crystalline materials for energy storage applications. Investigating the electrochemical features of proton-conducting flexible organic crystalline materials is crucial for the development of efficient energy storage and conversion devices.

DOI10.1039/d3ta05797f
Type of Journal (Indian or Foreign)

Foreign

Impact Factor (IF)

11.9

Divison category: 
Physical and Materials Chemistry
Database: 
Web of Science (WoS)

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