Crossover from propagon to diffuson thermal transport in SnTe due to nanodiamond inclusions leads to ultra-low lattice thermal conductivity

C Caleb Stamper (Institute for Superconducting and Electronic Materials) D David L. Cortie (Institute for Superconducting and Electronic Materials, University of Wollongong 1 , Wollongong, New South Wales 2500,) D Dehong Yu (Australian Nuclear Science and Technology Organisation) A Ablikim Bake (Institute for Superconducting and Electronic Materials, University of Wollongong 1 , Wollongong, NSW 2500,) M MD Rezoanur Rahman (Institute for Superconducting and Electronic Materials, University of Wollongong 1 , Wollongong, NSW 2500,) S Sheik Md Kazi Nazrul Islam (Institute for Superconducting and Electronic Materials, University of Wollongong 1 , Wollongong, NSW 2500,) K Kyle A. Portwin (Institute for Superconducting and Electronic Materials, University of Wollongong 1 , Wollongong, New South Wales 2500,) P Pablo Galaviz (Australian Nuclear Science Technology Organisation) R Rahil Ukani (Department of Chemistry and Chemical Biology) J Jarad A. Mason (Department of Chemistry and Chemical Biology) Z Zhenxiang Cheng X Xiaolin Wang (School of Pharmacy and State Key Laboratory of Quality Research in Chinese Medicine) Z Zengji Yue (School of Artificial Intelligence Science and Technology, University of Shanghai for Science and Technology 1 , Shanghai 200093,)

Abstract

The “phonon-glass electron-crystal” is an infamously challenging thermoelectric material design principle due to the interconnectedness of thermal and electronic transport in materials. Here, the incorporation of ∼5-nm particles of diamond—a phonon crystal—into the thermoelectric matrix of SnTe is explored as a route toward low lattice thermal conductivity. This counterintuitive strategy works because the large acoustic property mismatch at the SnTe–diamond interface blocks thermal transport. Between 300 and 773 K, SnTe with 1.0 vol. % nanodiamond inclusion exhibits the lowest average and absolute lattice thermal conductivities of any reported SnTe material in this temperature range. The ultra-low lattice thermal conductivity of the nanocomposites is investigated in the two-channel framework—recently advanced in the context of glassy and disordered materials—whereby heat is transported by propagating and non-propagating phonons termed propagons and diffusons, respectively. Above ∼650 K, calculations demonstrate the breakdown of the phonon gas (propagon-only) model for describing the nanocomposite conductivity. At ∼773 K, conductivity reaches the glassy limit where thermal transport is mediated by diffusons. Neutron spectroscopy reveals that with the increase in temperature, phonon modes in SnTe broaden and overlap in energy. We propose that linewidth broadening from nanodiamond-induced scattering and Umklapp processes promotes coupling and wave-like tunneling between overlapping modes, thereby enhancing diffuson-mediated transport at the expense of propagon transport. This progression toward diffuson-dominated conduction represents a novel transport paradigm in primarily crystalline nanocomposites.

Article Details

Volume / Issue Vol. 138, Issue 16
Published October 28, 2025
ISSN 0021-8979
Publisher American Institute of Physics

Journal Info

Journal of Applied Physics

American Institute of Physics

ISSN: 0021-8979 Physical Sciences

Authors (13)

C

Caleb Stamper

Institute for Superconducting and Electronic Materials

D

David L. Cortie

Institute for Superconducting and Electronic Materials, University of Wollongong 1 , Wollongong, New South Wales 2500,

D

Dehong Yu

Australian Nuclear Science and Technology Organisation

A

Ablikim Bake

Institute for Superconducting and Electronic Materials, University of Wollongong 1 , Wollongong, NSW 2500,

M

MD Rezoanur Rahman

Institute for Superconducting and Electronic Materials, University of Wollongong 1 , Wollongong, NSW 2500,

S

Sheik Md Kazi Nazrul Islam

Institute for Superconducting and Electronic Materials, University of Wollongong 1 , Wollongong, NSW 2500,

K

Kyle A. Portwin

Institute for Superconducting and Electronic Materials, University of Wollongong 1 , Wollongong, New South Wales 2500,

P

Pablo Galaviz

Australian Nuclear Science Technology Organisation

R

Rahil Ukani

Department of Chemistry and Chemical Biology

J

Jarad A. Mason

Department of Chemistry and Chemical Biology

Z

Zhenxiang Cheng

X

Xiaolin Wang

School of Pharmacy and State Key Laboratory of Quality Research in Chinese Medicine

Z

Zengji Yue

School of Artificial Intelligence Science and Technology, University of Shanghai for Science and Technology 1 , Shanghai 200093,