量子点
凝聚态物理
量子隧道
物理
准粒子
半经典物理学
光子
量子点接触
量子点激光器
谐振器
超导电性
安德列夫反射
电子
原子物理学
量子
量子力学
光电子学
量子阱
激光器
作者
S. Mojtaba Tabatabaei,Neda Jahangiri
出处
期刊:Physical review
[American Physical Society]
日期:2024-07-22
卷期号:110 (4)
标识
DOI:10.1103/physrevb.110.045433
摘要
In quantum dot junctions capacitively coupled to a resonator, electron tunneling through the quantum dot can be used to transfer heat between different parts of the system. This includes cooling or heating the electrons in electrodes and absorbing or emitting photons in the resonator mode. Such systems can be driven into a nonequilibrium state by applying either a voltage bias or a temperature gradient across the electrodes coupled to the quantum dot, or by employing an external coherent pump to excite the resonator. In this study, we present a semiclassical theory to describe the steady state of these structures. We employ a combination of the Floquet-nonequilibrium Green's functions method and semiclassical laser theory to analyze a normal metal-quantum dot-superconductor junction coupled to a resonator. Our investigation focuses on key parameters such as the average photon number and phase shift in the resonator, the charge current in the quantum dot, and the heat fluxes among different components of the system. We explore how photon-assisted Andreev reflection and quasiparticle tunneling in the quantum dot can refrigerate the resonator mode and the normal metal electrode. We also examine the influence of finite voltage and thermal biases on these processes.
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