Microscopic Insights to the Ultralow Thermal Conductivity of Monolayer 1T-SnTe2

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Main Authors: Aziz, Kemal, Ekpe, John E., Okekeoma, Augustine O., Ebuwa, Stanley O., Mbam, Sylvester M., Ani, Shedrack, Asogwa, Malachy N., Mangluhut, Richard A., Iloanya, Anthony C., Ezema, Fabian I., Ekuma, Chinedu E.
Format: Preprint
Published: 2025
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author Aziz, Kemal
Ekpe, John E.
Okekeoma, Augustine O.
Ebuwa, Stanley O.
Mbam, Sylvester M.
Ani, Shedrack
Asogwa, Malachy N.
Mangluhut, Richard A.
Iloanya, Anthony C.
Ezema, Fabian I.
Ekuma, Chinedu E.
author_facet Aziz, Kemal
Ekpe, John E.
Okekeoma, Augustine O.
Ebuwa, Stanley O.
Mbam, Sylvester M.
Ani, Shedrack
Asogwa, Malachy N.
Mangluhut, Richard A.
Iloanya, Anthony C.
Ezema, Fabian I.
Ekuma, Chinedu E.
contents Two-dimensional (2D) metallic systems with intrinsically low lattice thermal conductivity are rare, yet they are of great interest for next-generation energy and electronic technologies. Here, we present a comprehensive first-principles investigation of monolayer tin telluride (SnTe2) in its 1T (CdI2-type, P3m1) structure. Our calculations establish its energetic and dynamical stability, confirmed by large cohesive (10.9 eV/atom) and formation (-4.06 eV/atom) energies and a phonon spectrum free of imaginary modes. The electronic band structure reveals metallicity arising from strong Sn-Te p orbital hybridization. Most importantly, phonon dispersion analysis uncovers a microscopic origin for the ultralow lattice thermal conductivity: the heavy mass of Te atoms, weak Sn-Te bonding, and flat acoustic branches that yield exceptionally low and anisotropic group velocities (~5.0 x 10^3 m/s), together with the absence of a phonon bandgap that enhances Umklapp scattering. These features converge to suppress phonon-mediated heat transport. Complementary calculations of the optical dielectric response and joint density of states reveal pronounced interband transitions and a plasmonic resonance near 4.84 eV, suggesting additional optoelectronic opportunities. These findings establish monolayer SnTe2 as a 2D material whose vibrational softness naturally enforces ultralow lattice thermal conductivity, underscoring its potential for thermoelectric applications.
format Preprint
id arxiv_https___arxiv_org_abs_2512_24938
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Microscopic Insights to the Ultralow Thermal Conductivity of Monolayer 1T-SnTe2
Aziz, Kemal
Ekpe, John E.
Okekeoma, Augustine O.
Ebuwa, Stanley O.
Mbam, Sylvester M.
Ani, Shedrack
Asogwa, Malachy N.
Mangluhut, Richard A.
Iloanya, Anthony C.
Ezema, Fabian I.
Ekuma, Chinedu E.
Materials Science
Two-dimensional (2D) metallic systems with intrinsically low lattice thermal conductivity are rare, yet they are of great interest for next-generation energy and electronic technologies. Here, we present a comprehensive first-principles investigation of monolayer tin telluride (SnTe2) in its 1T (CdI2-type, P3m1) structure. Our calculations establish its energetic and dynamical stability, confirmed by large cohesive (10.9 eV/atom) and formation (-4.06 eV/atom) energies and a phonon spectrum free of imaginary modes. The electronic band structure reveals metallicity arising from strong Sn-Te p orbital hybridization. Most importantly, phonon dispersion analysis uncovers a microscopic origin for the ultralow lattice thermal conductivity: the heavy mass of Te atoms, weak Sn-Te bonding, and flat acoustic branches that yield exceptionally low and anisotropic group velocities (~5.0 x 10^3 m/s), together with the absence of a phonon bandgap that enhances Umklapp scattering. These features converge to suppress phonon-mediated heat transport. Complementary calculations of the optical dielectric response and joint density of states reveal pronounced interband transitions and a plasmonic resonance near 4.84 eV, suggesting additional optoelectronic opportunities. These findings establish monolayer SnTe2 as a 2D material whose vibrational softness naturally enforces ultralow lattice thermal conductivity, underscoring its potential for thermoelectric applications.
title Microscopic Insights to the Ultralow Thermal Conductivity of Monolayer 1T-SnTe2
topic Materials Science
url https://arxiv.org/abs/2512.24938