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首页> 外文期刊>Physical review >Relation between the 0.7 anomaly and the Kondo effect: Geometric crossover between a quantum point contact and a Kondo quantum dot
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Relation between the 0.7 anomaly and the Kondo effect: Geometric crossover between a quantum point contact and a Kondo quantum dot

机译:0.7异常与近藤效应之间的关系:量子点接触与近藤量子点之间的几何交叉

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摘要

Quantum point contacts (QPCs) and quantum dots (QDs), two elementary building blocks of semiconducting nanodevices, both exhibit famously anomalous conductance features: the 0.7 anomaly in the former case, the Kondo effect in the latter. For both the 0.7 anomaly and the Kondo effect, the conductance shows a remarkably similar low-energy dependence on temperature T, source-drain voltage V_(sd), and magnetic field B. In a recent publication [F. Bauer et al., Nature (London) 501,73 (2013)], we argued that the reason for these similarities is that both a QPC and a Kondo QD (KQD) feature spin fluctuations that are induced by the sample geometry, confined in a small spatial regime, and enhanced by interactions. Here, we further explore this notion experimentally and theoretically by studying the geometric crossover between a QD and a QPC, focusing on the B-field dependence of the conductance. We introduce a one-dimensional model with local interactions that reproduces the essential features of the experiments, including a smooth transition between a KQD and a QPC with 0.7 anomaly. We find that in both cases the anomalously strong negative magnetoconductance goes hand in hand with strongly enhanced local spin fluctuations. Our experimental observations include, in addition to the Kondo effect in a QD and the 0.7 anomaly in a QPC, Fano interference effects in a regime of coexistence between QD and QPC physics, and Fabry-Perot-type resonances on the conductance plateaus of a clean QPC. We argue that Fabry-Perot-type resonances occur generically if the electrostatic potential of the QPC generates a flatter-than-parabolic barrier top.
机译:量子点接触(QPC)和量子点(QD)是半导体纳米器件的两个基本组成部分,都具有著名的异常电导特性:前者为0.7异常,后者为Kondo效应。对于0.7异常和近藤效应,电导对温度T,源极-漏极电压V_(sd)和磁场B表现出非常相似的低能量依赖性。 Bauer等人,Nature(London)501,73(2013)],我们认为,这些相似之处的原因在于,QPC和Kondo QD(KQD)均具有受样品几何形状引起的自旋波动的限制,一个小的空间状态,并通过交互作用得到增强。在这里,我们通过研究QD和QPC之间的几何交叉,进一步在实验和理论上探索这一概念,重点是电导的B场依赖性。我们引入了具有局部相互作用的一维模型,该模型重现了实验的基本特征,包括KQD和具有0.7异常的QPC之间的平滑过渡。我们发现,在两种情况下,异常强的负磁导都与局部自旋波动的增强密切相关。我们的实验观察结果除了包括QD中的Kondo效应和QPC中的0.7异常外,还包括QD和QPC物理共存情况下的Fano干扰效应,以及纯净电导平台上的Fabry-Perot型共振。 QPC。我们认为,如果QPC的静电势产生比抛物线形的势垒更平坦的势垒,通常会发生Fabry-Perot型共振。

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  • 来源
    《Physical review 》 |2015年第19期| 195401.1-195401.19| 共19页
  • 作者单位

    Center for NanoScience and Fakultaet fuer Physik, Ludwig-Maximilians-Universitaet Muenchen, Geschwister-Scholl-Platz 1,80539 Muenchen, Germany,Arnold Sommerfeld Center for Theoretical Physics, Ludwig-Maximilians-Universitaet Muenchen, Theresienstrasse 37, D-80333 Muenchen, Germany;

    Center for NanoScience and Fakultaet fuer Physik, Ludwig-Maximilians-Universitaet Muenchen, Geschwister-Scholl-Platz 1,80539 Muenchen, Germany,Arnold Sommerfeld Center for Theoretical Physics, Ludwig-Maximilians-Universitaet Muenchen, Theresienstrasse 37, D-80333 Muenchen, Germany;

    Center for NanoScience and Fakultaet fuer Physik, Ludwig-Maximilians-Universitaet Muenchen, Geschwister-Scholl-Platz 1,80539 Muenchen, Germany;

    Center for NanoScience and Fakultaet fuer Physik, Ludwig-Maximilians-Universitaet Muenchen, Geschwister-Scholl-Platz 1,80539 Muenchen, Germany;

    Institut fuer Angewandte Physik, Universitaet Regensburg, D-93040 Regensburg, Germany;

    Laboratory for Solid State Physics, ETH Zuerich, CH-8093 Zuerich, Switzerland;

    Center for NanoScience and Fakultaet fuer Physik, Ludwig-Maximilians-Universitaet Muenchen, Geschwister-Scholl-Platz 1,80539 Muenchen, Germany,Arnold Sommerfeld Center for Theoretical Physics, Ludwig-Maximilians-Universitaet Muenchen, Theresienstrasse 37, D-80333 Muenchen, Germany;

    Center for NanoScience and Fakultaet fuer Physik, Ludwig-Maximilians-Universitaet Muenchen, Geschwister-Scholl-Platz 1,80539 Muenchen, Germany,Paul-Drude-Institut fuer Festkoerperelektronik, Hausvogteiplatz 5-7, 10117 Berlin, Germany;

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  • 正文语种 eng
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  • 关键词

    quantum transport; theories and models of many-electron systems; quantum wires; quantum dots;

    机译:量子传输多电子系统的理论和模型;量子线量子点;

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