Bandyopadhyay Malay, Segal Dvira
Chemical Physics Theory Group, Department of Chemistry University of Toronto, 80 St George Street, Toronto, Ontario M5S 3H6, Canada.
Phys Rev E Stat Nonlin Soft Matter Phys. 2011 Jul;84(1 Pt 1):011151. doi: 10.1103/PhysRevE.84.011151. Epub 2011 Jul 29.
We describe a numerical scheme for exactly simulating the heat current behavior in a quantum harmonic chain with self-consistent reservoirs. Numerically exact results are compared to classical simulations and to the quantum behavior under the linear-response approximation. In the classical limit or for small temperature biases our results coincide with previous calculations. At large bias and for low temperatures the quantum dynamics of the system fundamentally differs from the close-to-equilibrium behavior, revealing in particular the effect of thermal rectification for asymmetric chains. Since this effect is absent in the classical analog of our model, we conclude that in the quantum model studied here thermal rectification is a purely quantum phenomenon, rooted in the quantum statistics.
我们描述了一种数值方案,用于精确模拟具有自洽库的量子谐振链中的热流行为。将数值精确结果与经典模拟以及线性响应近似下的量子行为进行了比较。在经典极限或小温度偏置下,我们的结果与先前的计算结果一致。在大偏置和低温下,系统的量子动力学与接近平衡的行为有根本不同,特别揭示了非对称链的热整流效应。由于在我们模型的经典类似物中不存在这种效应,我们得出结论,在此研究的量子模型中,热整流是一种纯粹的量子现象,源于量子统计。