arXiv · 2603.04835
A minimal electrostatic theory for the Seebeck coefficient in liquids
Abstract
The Seebeck coefficient in liquids often reaches the mV/K range, yet its microscopic origin remains unclear due to the complexity of electrolyte systems. Here we propose a minimal electrostatic theory focusing on solvation entropy. Using a core-shell extension of the Born equation with temperature-dependent dielectric response, we provide an alternative electrostatic interpretation of the mV/K-scale solvent-structuring contribution extracted for a cobalt redox electrolyte. The theory clarifies that large valence, small cationic radius, small dielectric constant, and large magnitude of $\frac{d\varepsilon}{dT}$ are key factors for enhanced liquid Seebeck response.
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Wataru Kobayashi. 2026-03-05. A minimal electrostatic theory for the Seebeck coefficient in liquids. https://doi.org/10.1016/j.molliq.2026.129850
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