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Unified framework shows thermoelectric performance depends on more than the material itself

Unified framework shows thermoelectric performance depends on more than the material itself

phys.org 12.09.2026 21:30 1 views
Thermoelectric materials can directly convert heat into electricity, making them promising for recovering waste heat from factories, vehicles and other sources. They can also transport heat when an electric current is ap

This article has been reviewed according to Science X's editorial process and policies. Editors have highlighted the following attributes while ensuring the content's credibility: Thermoelectric materials can directly convert heat into electricity, making them promising for recovering waste heat from factories, vehicles and other sources. They can also transport heat when an electric current is applied through a phenomenon known as the Peltier effect.

These properties have attracted considerable interest in energy-saving technologies and thermal management. However, the performance of a thermoelectric device is not determined by the thermoelectric material alone. Electrodes, lead wires and the way heat escapes from the device to its surroundings—known as heat leakage—can also strongly influence its behavior.

In conventional thermoelectric research, performance has often been evaluated using the dimensionless figure of merit, or zT, after the electrical and thermal conditions have reached a steady state. As a result, less attention has been paid to how the coupled electrical and thermal response develops over time and how the different components of a real device contribute to that response. Associate Professor Yasuhiro Hasegawa of the Graduate School of Science and Engineering at Saitama University has developed a theoretical framework that treats the thermoelectric material, electrodes and heat leakage within a single unified description.

The study was published in the Journal of Applied Physics The approach is based on time-domain impedance spectroscopy (TDIS), a method in which a step-like electric current is applied to a thermoelectric material and the resulting change in electrical resistance is monitored over time. Immediately after the current is applied, the system first shows an electrical response. The current then transports heat through the Peltier effect, gradually changing the temperature distribution inside the material.

This evolving temperature distribution, in turn, affects the electrical response. Because these processes occur simultaneously, the measured time-dependent signal reflects the combined influence of the thermoelectric material, electrodes, lead wires and heat leakage. Until now, separating these contributions and understanding their individual roles has been challenging.

Hasegawa theoretically analyzed the TDIS response and showed that the different contributions can be quantitatively distinguished. This makes it possible to interpret what previously appeared to be a single complex transient signal in terms of the individual elements that make up the thermoelectric system. Importantly, the analysis also revealed that the time-dependent response follows a common scaling law, even when the thermoelectric materials or measurement conditions differ.

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