Exciton Transport in a Germanium Quantum Dot Ladder

物理 量子点 电子 量子 库仑 量子力学 凝聚态物理
作者
Tzu-Kan Hsiao,Pablo Cova Fariña,Stefan D. Oosterhout,Daniel Jirovec,Xin Zhang,Cornelis Jacobus van Diepen,William I. L. Lawrie,Chien-An Wang,Amir Sammak,Giordano Scappucci,Menno Veldhorst,Eugene Demler,L. M. K. Vandersypen
出处
期刊:Physical Review X [American Physical Society]
卷期号:14 (1) 被引量:9
标识
DOI:10.1103/physrevx.14.011048
摘要

Quantum systems with engineered Hamiltonians can be used to study many-body physics problems to provide insights beyond the capabilities of classical computers. Semiconductor gate-defined quantum dot arrays have emerged as a versatile platform for realizing generalized Fermi-Hubbard physics, one of the richest playgrounds in condensed matter physics. In this work, we employ a germanium 4×2 quantum dot array and show that the naturally occurring long-range Coulomb interaction can lead to exciton formation and transport. We tune the quantum dot ladder into two capacitively coupled channels and exploit Coulomb drag to probe the binding of electrons and holes. Specifically, we shuttle an electron through one leg of the ladder and observe that a hole is dragged along in the second leg under the right conditions. This corresponds to a transition from single-electron transport in one leg to exciton transport along the ladder. Our work paves the way for the study of excitonic states of matter in quantum dot arrays.7 MoreReceived 5 July 2023Revised 8 December 2023Accepted 5 February 2024DOI:https://doi.org/10.1103/PhysRevX.14.011048Published by the American Physical Society under the terms of the Creative Commons Attribution 4.0 International license. Further distribution of this work must maintain attribution to the author(s) and the published article's title, journal citation, and DOI.Published by the American Physical SocietyPhysics Subject Headings (PhySH)Research AreasExcitonsQuantum simulationPhysical SystemsQuantum dotsSemiconductorsStrongly correlated systemsQuantum Information, Science & TechnologyCondensed Matter, Materials & Applied Physics
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