Current noise in quantum dot thermoelectric engines

IF 3.7 2区 物理与天体物理 Q1 Physics and Astronomy Physical Review B Pub Date : 2025-02-18 DOI:10.1103/physrevb.111.075422
Simon Wozny, Martin Leijnse
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Abstract

We theoretically investigate a thermoelectric heat engine based on a single-level quantum dot, calculating average quantities such as current, heat current, output power, and efficiency, as well as fluctuations (noise). Our theory is based on a diagrammatic expansion of the memory kernel together with counting statistics, and we investigate the effects of strong interactions and next-to-leading order tunneling. Accounting for next-to-leading order tunneling is crucial for a correct description when operating at high power and high efficiency, and in particular affect the qualitative behavior of the Fano factor and efficiency. We compare our results with the so-called thermodynamic uncertainty relations, which provide a lower bound on the fluctuations for a given efficiency. In principle, the conventional thermodynamic uncertainty relations can be violated by the non-Markovian quantum effects originating from next-to-leading order tunneling, providing a type of quantum advantage. However, for the specific heat engine realization we consider here, we find that next-to-leading order tunneling does not lead to such violations, but in fact always pushes the results further away from the bound set by the thermodynamic uncertainty relations. Published by the American Physical Society 2025
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量子点热电发动机中的电流噪声
我们从理论上研究了基于单能级量子点的热电热机,计算了电流、热电流、输出功率、效率以及波动(噪声)等平均量。我们的理论是基于内存核的图解扩展和计数统计,我们研究了强相互作用和次领先阶隧道的影响。当工作在高功率和高效率时,考虑次领先阶隧道对于正确描述至关重要,特别是影响Fano因子和效率的定性行为。我们将我们的结果与所谓的热力学不确定性关系进行比较,后者为给定的效率提供了波动的下限。原则上,由次领先阶隧穿产生的非马尔可夫量子效应可以打破传统的热力学不确定性关系,从而提供一种量子优势。然而,对于我们在这里考虑的具体热机实现,我们发现次领先阶隧穿不会导致这种违反,但实际上总是使结果进一步远离热力学不确定性关系设定的界限。2025年由美国物理学会出版
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来源期刊
Physical Review B
Physical Review B 物理-物理:凝聚态物理
CiteScore
6.70
自引率
32.40%
发文量
0
审稿时长
3.0 months
期刊介绍: Physical Review B (PRB) is the world’s largest dedicated physics journal, publishing approximately 100 new, high-quality papers each week. The most highly cited journal in condensed matter physics, PRB provides outstanding depth and breadth of coverage, combined with unrivaled context and background for ongoing research by scientists worldwide. PRB covers the full range of condensed matter, materials physics, and related subfields, including: -Structure and phase transitions -Ferroelectrics and multiferroics -Disordered systems and alloys -Magnetism -Superconductivity -Electronic structure, photonics, and metamaterials -Semiconductors and mesoscopic systems -Surfaces, nanoscience, and two-dimensional materials -Topological states of matter
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