Local thermal probe in a one-dimensional chain: An efficient dissipaton-based approach
Abstract
We study a system consisting of an infinite one-dimensional molecular chain and a locally coupled probe. Starting from the Hamiltonian of the chain-probe composite and the corresponding spectral densities, we evaluate the heat current between the probe and the chain. For this purpose, we develop a dissipaton-based quantum approach that is fully nonperturbative and non-Markovian. The dissipaton algebra yields a set of hierarchically coupled equations of motion for the dissipaton moments, with cross-tier connections in an iterative manner if higher-order chain-probe interactions are included. Numerical results demonstrate the effects of temperature, frequency, onsite energy modification and higher-order couplings on heat transport. This work provides a general framework for thermal transport and other properties in locally probed systems and can be straightforwardly extended to higher-dimensional materials and electronic transport problems with strong many-body effects.
Cite
@article{arxiv.2603.29458,
title = {Local thermal probe in a one-dimensional chain: An efficient dissipaton-based approach},
author = {Hao-Yang Qi and Zi-Fan Zhu and Yao Wang and Rui-Xue Xu and YiJing Yan},
journal= {arXiv preprint arXiv:2603.29458},
year = {2026}
}
Comments
11 pages, 5 figures