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Updated: Aug 12, 2026

Characterization of Thermal Transport in One-dimensional Solid Materials
Published on: January 26, 2014
Geometric formulation of the thermoelectric dimensionless figure of merit within the Onsager framework
Yasuhiro Hasegawa1, Takashi Komine2
1School of Science and Engineering, Saitama University, 255, Shimo-okubo, Sakura, Saitama 338-8570, Japan.
Abstract:
This paper presents a geometric formulation of the thermoelectric dimensionless figure of meritbased on the metric structure of the Onsager matrix. Althoughis conventionally expressed in terms of electrical conductivity, Seebeck coefficient, thermal conductivity, and temperature, we show that it is determined by the intrinsic coupling structure encoded in the Onsager matrix. By first interpreting the Onsager matrix as a Gram matrix and then introducing a rescaled vector representation on a common energy-transport scale, a geometric description on the Onsager plane is constructed, revealing that, whereis a single angle characterizing electrothermal coupling. Within this framework, the intrinsic dimensionless figure of merit, determined by the Onsager matrix for a specified thermodynamic state, is represented geometrically by the relative orientation of the transport vectors. Experimentally reconstructed values may deviate from this intrinsic quantity when the constituent transport coefficients are evaluated under inconsistent measurement conditions. The reversible limit corresponds to the singular boundary at which the metric becomes degenerate, while a simplified transport model based on Fermi-Dirac statistics yields a model-dependent characteristic geometric scale for. These results provide a framework for interpreting thermoelectric performance as a geometric balance between coupling and dissipation.
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