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DOE OSTI · 3702053

Conformational Isomerization of Imide Anions Governs Solvation and Transport in Water-in-Salt Electrolytes

Abstract

The behavior of highly concentrated electrolytes departs radically from the dilute-solution theory, yet the molecular origin of this transformation remains unresolved. Here, we identify the conformational isomerization of molecular ions as a decisive, previously unrecognized control parameter governing structure and transport in crowded aqueous electrolytes. Across a series of fluorosulfonimide anions, we show that increasing concentration drives a collective shift from extended transoid to compact cisoid conformers, revealed by small-angle X-ray scattering, vibrational spectroscopy, pulsed-field gradient NMR, and molecular dynamics simulations. This conformational transition triggers a collapse of the hydrogen-bonded water network and the emergence of densely packed ionic domains with confined water, producing a qualitative change in Li+ transport from solvent-mediated diffusion to network-confined hopping. Anion size and asymmetry systematically tune the onset of this transition, demonstrating that molecular geometry dictates mesoscale organization and dynamics in the ion-rich regime. Our results establish ion conformation, not merely composition or coordination, as a fundamental thermodynamic variable in concentrated solutions, providing a chemical framework that unifies solvation structure and transport in water-in-salt electrolytes and suggesting new principles for designing dense ionic media.

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Nguyen, Huong TD, Fang, Lingzhe, Koverga, Volodymyr, Rai, Lalita, Lemaalem, Mohammed, Lyu, Xingyi, Ngo, Anh T., Li, Tao. 2026-07-29. Conformational Isomerization of Imide Anions Governs Solvation and Transport in Water-in-Salt Electrolytes. https://doi.org/10.1021/jacs.6c06055

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