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May 6, 2026Materials0 citationsOpen Access

Restoration of the Korringa Relation in Disordered Liquid Systems via Transverse Relaxation (T2)

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YZYuan ZengLYLanlan YangJYJiejun Yao

Key Points

  • This research aims to resolve the breakdown of the Korringa relation in disordered liquid metals.
  • Investigated Ga-based alloys EGaIn and Galinstan
  • Measured temperature-dependent Knight shifts and relaxation times T1 and T2
  • Incorporated T2 into a modified framework to analyze deviations from classical behavior
  • Demonstrated deviations from Korringa relation are due to transverse spin dephasing
  • Highlighted significant discrepancies between T1 and T2 in the liquid phase
  • Established transverse relaxation as critical for understanding nuclear spin dynamics in complex liquid metals

Abstract

This study resolves the apparent breakdown of the Korringa relation in disordered liquid metals by investigating Ga-based alloys (EGaIn and Galinstan). By integrating temperature-dependent Knight shifts (K) with longitudinal (T1) and transverse (T2) relaxation measurements, we demonstrate that deviations from classical behavior arise from neglecting transverse spin dephasing induced by structural and electronic disorder. While solid-state alloys follow the conventional Korringa law, the liquid phase exhibits significant discrepancies between T1 and T2 due to enhanced electron scattering and fluctuating hyperfine fields. By explicitly incorporating T2 into a modified framework, the proportionality between the Knight shift and nuclear relaxation is quantitatively restored. This establishes transverse relaxation as a critical parameter for describing nuclear spin dynamics in complex liquid metals, reinforcing NMR as a powerful local probe for optimizing next-generation liquid metal technologies.

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Cite This Study

Zeng et al. (2026) studied this question.

synapsesocial.com/papers/69fa989404f884e66b532601https://doi.org/10.3390/ma19091826
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