掺杂原子薄半导体异质结构中强电子-激子耦合诱导的超导性

IF 9 1区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY
Jonas von Milczewski, Xin Chen, Atac Imamoglu, Richard Schmidt
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引用次数: 0

摘要

我们研究了一种在原子薄半导体中诱导超导的机制,其中激子介导电子之间的有效吸引力。我们的模型包括超越声子介导的超导范式的相互作用效应,并连接到Bose和费米极化子的公认极限。通过考虑三角子的强耦合物理,我们发现有效的电子-激子相互作用发展出强烈的频率和动量依赖,伴随着系统经历从弱束缚s波库珀对到双极化子超流体的BCS-BEC交叉。即使在强耦合下,双极化子仍然相对较轻,导致临界温度高达费米温度的10%。这使得二维材料的异质结构有希望在电子掺杂和三角结合能设定的高温下实现超导性。2024年由美国物理学会出版
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Superconductivity Induced by Strong Electron-Exciton Coupling in Doped Atomically Thin Semiconductor Heterostructures
We study a mechanism to induce superconductivity in atomically thin semiconductors where excitons mediate an effective attraction between electrons. Our model includes interaction effects beyond the paradigm of phonon-mediated superconductivity and connects to the well-established limits of Bose and Fermi polarons. By accounting for the strong-coupling physics of trions, we find that the effective electron-exciton interaction develops a strong frequency and momentum dependence accompanied by the system undergoing an emerging BCS-BEC crossover from weakly bound s-wave Cooper pairs to a superfluid of bipolarons. Even at strong-coupling the bipolarons remain relatively light, resulting in critical temperatures of up to 10% of the Fermi temperature. This renders heterostructures of two-dimensional materials a promising candidate to realize superconductivity at high critical temperatures set by electron doping and trion binding energies. Published by the American Physical Society 2024
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来源期刊
Physical review letters
Physical review letters 物理-物理:综合
CiteScore
16.50
自引率
7.00%
发文量
2673
审稿时长
2.2 months
期刊介绍: Physical review letters(PRL)covers the full range of applied, fundamental, and interdisciplinary physics research topics: General physics, including statistical and quantum mechanics and quantum information Gravitation, astrophysics, and cosmology Elementary particles and fields Nuclear physics Atomic, molecular, and optical physics Nonlinear dynamics, fluid dynamics, and classical optics Plasma and beam physics Condensed matter and materials physics Polymers, soft matter, biological, climate and interdisciplinary physics, including networks
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