Quantum vs Classical Thermal Transport at Low Temperatures
Abstract
This work aims to understand how quantum mechanics affects heat transport at low temperatures. In the classical setting, by considering a simple paradigmatic model, our simulations reveal the emergence of Negative Differential Thermal Resistance (NDTR): paradoxically, increasing the temperature bias by lowering the cold bath temperature reduces the steady-state heat current. In sharp contrast, the quantum version of the model, treated via a Lindblad master equation, exhibits no NDTR: the heat current increases monotonically with thermal bias. This marked divergence highlights the fundamental role of quantum effects in low-temperature thermal transport and underscores the need to reconsider classical predictions when designing and optimizing nanoscale thermal devices.
Cite
@article{arxiv.2509.14027,
title = {Quantum vs Classical Thermal Transport at Low Temperatures},
author = {Zhixing Zou and Jiangbin Gong and Jiao Wang and Giulio Casati and Giuliano Benenti},
journal= {arXiv preprint arXiv:2509.14027},
year = {2026}
}
Comments
6+4 pages; comments are welcome