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April 24, 2026ACS Applied Materials & Interfaces0 citations

First-Principles Investigation on the Thermoelectric Properties of Layered γ- and γ′-GaSe

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FLFuyun LvYWYì WángWJWenyan Jiao

Key Points

  • This study aims to explore the thermoelectric properties of γ- and γ′-GaSe using advanced computational methods.
  • Utilized first-principles calculations to assess the electronic structures.
  • Applied Boltzmann transport theory to evaluate thermoelectric properties.
  • Analyzed vibrational stability through phonon frequency assessments.
  • Both γ- and γ'-GaSe phases are dynamically and thermally stable with positive phonon frequencies.
  • γ'-GaSe shows lower lattice thermal conductivity due to stronger antibonding states.
  • Achieved a maximum cross-plane ZT value of 2.8 at 600 K for p-type γ'-GaSe, indicating strong thermoelectric performance.

Abstract

Layered compounds have attracted considerable attention owing to their diverse chemical bonding and unique electronic structures. In this study, we give an in-depth study of the thermoelectric properties of γ- and γ'-GaSe by using first-principles calculations combined with Boltzmann transport theory. It is found that both phases are dynamically and thermally stable, as evidenced by their positive phonon frequencies and minimal structural fluctuations at a finite temperature. Interestingly, the valence top of each system is composed of heavy and light bands, which would reduce the significant difference between the in-plane and cross-plane electrical conductivity rooted in many layered systems. Besides, a lower lattice thermal conductivity is observed in γ'-GaSe, which can be attributed to its stronger antibonding states and larger bonding heterogeneity. Combining its favorable electronic transport characteristics, a maximum cross-plane ZT of 2.8 at 600 K can be realized for the p-type γ'-GaSe, revealing its promising potential for thermoelectric conversions.

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Cite This Study

Lv et al. (2026) studied this question.

synapsesocial.com/papers/69eb08ef553a5433e34b390ahttps://doi.org/10.1021/acsami.6c00471
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