English

Thermal rectification due to phonon confinement in nanoparticles

Mesoscale and Nanoscale Physics 2026-06-30 v1

Abstract

We demonstrate that thermal rectification can arise at the contact between two spherical nanoparticles of identical material but different size due to the geometric confinement of phonons. This confinement suppresses long-wavelength phonons differently in differently sized particles and creates a size-dependent gap in the phonon density of states. This gives rise to direction-dependent heat transport even in perfectly homogeneous materials. We develop an analytical model based on phonon confinement and phonon ray-tracing in the Casimir regime and derive expressions for heat fluxes and rectification efficiency as functions of particle sizes and temperatures. The model predicts measurable rectification efficiencies for nanoparticles with radii of a few tens of nanometers, reaching fraction of percent at room temperature and much larger values at low temperatures. The proposed mechanism provides a straightforward and scalable route to thermal rectification in granular nanomaterials without requiring material heterogeneity or strong nonlinearities.

Cite

@article{arxiv.2606.31263,
  title  = {Thermal rectification due to phonon confinement in nanoparticles},
  author = {Alexej D. Semenov and Mariia Sidorova and Alessio Zaccone and Marcel Di Vece},
  journal= {arXiv preprint arXiv:2606.31263},
  year   = {2026}
}
R2 v1 2026-07-22T20:18:00.476Z