Unlocking the potential of proton conductivity in guanidinium-based ionic covalent organic nanosheets (iCONs) through pore interior functionalization
Title | Unlocking the potential of proton conductivity in guanidinium-based ionic covalent organic nanosheets (iCONs) through pore interior functionalization |
Publication Type | Journal Article |
Year of Publication | 2023 |
Authors | Kumar, S, Hu, J, Pandikassala, A, Kurungot, S, Addicoat, MA, Szekely, G |
Journal | Applied Materials Today |
Volume | 33 |
Pagination | 101866 |
Date Published | AUG |
Type of Article | Article |
ISSN | 2352-9407 |
Keywords | chemical stability, Functionalized pore interior, Guanidinium group, ionic covalent organic nanosheets, proton conductivity |
Abstract | Recently, scientists have been exploring the incorporation of proton carriers such as water and phosphoric acid (PA) into the pores and channels of porous materials to enhance proton conduction performance. Ionic covalent organic nanosheets (iCONs) have been identified as promising functional materials due to their inbuilt ionic interfaces, which can facilitate strong interaction with counter ions present inside the pore structure and thus shorten ion transport pathways. However, there is a lack of research related to proton conductivity in iCONs loaded with PA. To address this, we prepared three functionalized guanidinium-based iCONs using a solvothermal condensation reaction between guanidinium amine (TG) and functionalized terephthaldehyde (Da, Dha, and Dma). PA was also incorporated into the iCON structure via ex situ loading to observe its effects on proton conduction performance. The results showed that both the iCONs and PA-iCONs were highly stable in water, organic solvents, acidic and basic media. Amongst these PA-iCONs, one with hydroxyl-functionalization (PA-DhaTG) displayed high proton conductivity at 90 degrees C and 95% relative humidity due to a Grotthuss mechanism for protons. These functionalized guanidinium-based iCONs could prove useful for applications in energy conversion devices. |
DOI | 10.1016/j.apmt.2023.101866 |
Type of Journal (Indian or Foreign) | Foreign |
Impact Factor (IF) | 8.3 |
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