Gelation, clustering, and crowding in the electrical double layer of ionic liquids
Understanding the bulk and interfacial properties of super-concentrated electrolytes, such as ionic liquids (ILs), has attracted significant attention lately for their promising applications in supercapacitors and batteries. Recently, McEldrew et al. [J. Phys. Chem. B 125, 2677 (2021)] developed a t...
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Published in | The Journal of chemical physics Vol. 157; no. 9 |
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Main Authors | , , , , |
Format | Journal Article |
Language | English |
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07.09.2022
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Abstract | Understanding the bulk and interfacial properties of super-concentrated electrolytes, such as ionic liquids (ILs), has attracted significant attention lately for their promising applications in supercapacitors and batteries. Recently, McEldrew et al. [J. Phys. Chem. B 125, 2677 (2021)] developed a theory for reversible ion associations in bulk ILs, which accounted for the formation of all possible (Cayley tree) clusters and a percolating ionic network (gel). Here, we adopt and develop this approach to understand the associations of ILs in the electrical double layer at electrified interfaces. With increasing charge of the electrode, the theory predicts a transition from a regime dominated by a gelled or clustered state to a crowding regime dominated by free ions. This transition from gelation to crowding is conceptually similar to the overscreening to crowding transition. |
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AbstractList | Understanding the bulk and interfacial properties of super-concentrated electrolytes, such as ionic liquids (ILs), has attracted significant attention lately for their promising applications in supercapacitors and batteries. Recently, McEldrew et al. [J. Phys. Chem. B 125, 2677 (2021)] developed a theory for reversible ion associations in bulk ILs, which accounted for the formation of all possible (Cayley tree) clusters and a percolating ionic network (gel). Here, we adopt and develop this approach to understand the associations of ILs in the electrical double layer at electrified interfaces. With increasing charge of the electrode, the theory predicts a transition from a regime dominated by a gelled or clustered state to a crowding regime dominated by free ions. This transition from gelation to crowding is conceptually similar to the overscreening to crowding transition. |
Author | McEldrew, Michael Pedro de Souza, J. Bazant, Martin Z. Kornyshev, Alexei A. Goodwin, Zachary A. H. |
Author_xml | – sequence: 1 givenname: Zachary A. H. surname: Goodwin fullname: Goodwin, Zachary A. H. organization: 5Institute of Molecular Science and Engineering, Imperial College of London, South Kensington Campus, London SW7 2AZ, United Kingdom – sequence: 2 givenname: Michael surname: McEldrew fullname: McEldrew, Michael organization: Department of Chemical Engineering, Massachusetts Institute of Technology – sequence: 3 givenname: J. surname: Pedro de Souza fullname: Pedro de Souza, J. organization: Department of Chemical Engineering, Massachusetts Institute of Technology – sequence: 4 givenname: Martin Z. surname: Bazant fullname: Bazant, Martin Z. email: bazant@mit.edu organization: 5Institute of Molecular Science and Engineering, Imperial College of London, South Kensington Campus, London SW7 2AZ, United Kingdom – sequence: 5 givenname: Alexei A. surname: Kornyshev fullname: Kornyshev, Alexei A. email: a.kornyshev@imperial.ac.uk organization: 5Institute of Molecular Science and Engineering, Imperial College of London, South Kensington Campus, London SW7 2AZ, United Kingdom |
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Snippet | Understanding the bulk and interfacial properties of super-concentrated electrolytes, such as ionic liquids (ILs), has attracted significant attention lately... |
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Title | Gelation, clustering, and crowding in the electrical double layer of ionic liquids |
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