How Ions Reshape the Infrared Spectra of Aqueous NaCl

Abstract Infrared (IR) spectroscopy probes the hydrogen-bond structure of electrolyte solutions, yet relating spectra to molecular mechanisms is challenging. We combine machine-learning molecular dynamics with a deep Wannier model to compute concentration-dependent IR spectra of aqueous NaCl with strongly constrained and appropriately normed (SCAN)-level accuracy. The spectra semiquantitatively reproduce the experimental blue shift, intensity enhancement, band narrowing, and isosbestic point of the O–H stretching band. Dipole-current decomposition reveals two ionic effects. First, ions reshape the water IR response: by disrupting the hydrogen-bond network of first-shell water, they blue-shift the stretching band and suppress its intensity, with Na+ more disruptive than Cl–. Second, ions themselves carry an IR response: the electronic polarization of Cl–, driven by O–H stretching of its hydrogen-bonded waters, adds high-frequency intensity essential for the isosbestic point. Because both effects are local and additive, spectra at any concentration can be reconstructed from hydration-shell and ionic contributions, a transferable framework for electrolyte IR spectra.

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Publication Details

Journal
The Journal of Physical Chemistry Letters
Published
2026-09-29
DOI
https://doi.org/10.1021/acs.jpclett.6c02161
Primary Topic
Spectroscopy and Quantum Chemical Studies
Type
article
Field-Weighted Citation Impact
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How Ions Reshape the Infrared Spectra of Aqueous NaCl

Chunyi Zhang, Ming Yang, Yu Zheng, Chenxi Nie
The Journal of Physical Chemistry Letters
Spectroscopy and Quantum Chemical Studies
article

How Ions Reshape the Infrared Spectra of Aqueous NaCl

Chunyi Zhang, Ming Yang, Yu Zheng, Chenxi Nie
article en

Abstract

Abstract Infrared (IR) spectroscopy probes the hydrogen-bond structure of electrolyte solutions, yet relating spectra to molecular mechanisms is challenging. We combine machine-learning molecular dynamics with a deep Wannier model to compute concentration-dependent IR spectra of aqueous NaCl with strongly constrained and appropriately normed (SCAN)-level accuracy. The spectra semiquantitatively reproduce the experimental blue shift, intensity enhancement, band narrowing, and isosbestic point of the O–H stretching band. Dipole-current decomposition reveals two ionic effects. First, ions reshape the water IR response: by disrupting the hydrogen-bond network of first-shell water, they blue-shift the stretching band and suppress its intensity, with Na+ more disruptive than Cl–. Second, ions themselves carry an IR response: the electronic polarization of Cl–, driven by O–H stretching of its hydrogen-bonded waters, adds high-frequency intensity essential for the isosbestic point. Because both effects are local and additive, spectra at any concentration can be reconstructed from hydration-shell and ionic contributions, a transferable framework for electrolyte IR spectra.

The Journal of Physical Chemistry Letters
Eastern Institute of Technology (NZ), Hong Kong Polytechnic University (HK), Princeton University (US)
Clean water and sanitation
Openalex Percentile: Top 14%
Spectroscopy and Quantum Chemical Studies
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