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April 11, 2026The Journal of Physical Chemistry B0 citationsOpen Access

Ion-Pair Speciation in Aqueous Alkali Fluorides from Nuclear Magnetic Resonance of 19 F

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MMMałgorzata MusiałSMSamantha L. MillerCSChristopher L. Suiter

Key Points

  • The aim is to investigate how ion-pair speciation in alkali fluorides changes with temperature and molality using NMR and modeling.
  • Utilized 19F NMR experimental techniques to measure chemical shifts.
  • Combined with multiscale modeling to simulate ion-pair behaviors.
  • Estimated speciation populations using molecular dynamics and thermodynamic equilibrium constants.
  • Observed clear trends in ion-pair chemical shifts across Group I cations.
  • Lighter cations (Li+ and Na+) show dehydration effects while heavier cations (K+, Rb+, Cs+) reveal deshielding influences.
  • Established a connection between chemical shift trends and changes in ion-pair populations with varying temperature and molality.

Abstract

We demonstrate that a combination of multiscale modeling and experimental 19F NMR can be used to examine the molecular details of how ion-pair speciation changes with temperature and molality. Excellent agreement with experimental 19F NMR chemical shifts is attained through the pairing of the theoretical ion-pair chemical shift profile with speciation populations estimated with molecular dynamics simulations and thermodynamic equilibrium constants. Clear periodic trends down Group I metal cations show that the ion-pair chemical shift profile is dominated by the shielding effects of pairing-induced dehydration for smaller cations (Li+ and Na+) that are overwhelmed by short-range deshielding effects for heavier cations (K+, Rb+, and Cs+). The experimental 19F NMR chemical shift trends with increasing temperature and molality are connected explicitly to changes in ion-pair populations relative to the free-ion state. This work provides a general approach to model ion pairing and solvation within the framework of NMR, which has implications for understanding ion-pairing phenomena in various systems.

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Cite This Study

Musiał et al. (2026) studied this question.

synapsesocial.com/papers/69d9e64e78050d08c1b76a48https://doi.org/10.1021/acs.jpcb.5c08394
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