Coulomb drag in topological wires separated by an air gap

被引:0
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作者
Lingjie Du
Jianmin Zheng
Yang-Zhi Chou
Jie Zhang
Xingjun Wu
Gerard Sullivan
Amal Ikhlassi
Rui-Rui Du
机构
[1] Nanjing University,School of Physics, and National Laboratory of Solid State Microstructures
[2] Rice University,Department of Physics and Astronomy
[3] Peking University,International Center for Quantum Materials, School of Physics
[4] University of Maryland,Condensed Matter Theory Center and Joint Quantum Institute, Department of Physics
[5] Teledyne Scientific and Imaging,undefined
来源
Nature Electronics | 2021年 / 4卷
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摘要
Strong electron–electron interactions between adjacent nanoscale wires can lead to one-dimensional Coulomb drag, where current in one wire induces a voltage in the second wire via Coulomb interactions. This effect creates challenges for the development of nanoelectronic devices. Quantum spin Hall (QSH) insulators are a promising platform for the development of low-power electronic devices due to their topological protection of edge states from non-magnetic disorder. However, although Coulomb drag in QSH edges has been considered theoretically, experimental explorations of the effect remain limited. Here, we show that one-dimensional Coulomb drag can be observed between adjacent QSH edges that are separated by an air gap. The pair of one-dimensional helical edge states is created in split H-bar devices in inverted InAs/GaSb quantum wells. Near the Dirac point, negative drag signals dominate at low temperatures and exhibit a non-monotonic temperature dependence, suggesting that distinct drag mechanisms compete and cancel out at higher temperatures. The results suggest that QSH effects could be used to suppress the impact of Coulomb interactions on the performance of future nanocircuits.
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页码:573 / 578
页数:5
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