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Distortions of the coulomb blockade conductance line in scanning gate measurements of inas nanowire based quantum dots

机译:在基于inas纳米线的量子点的扫描门测量中,库仑阻塞电导线的失真

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We performed measurements at helium temperatures of the electronic transport in the linear regime in an InAs quantum wire in the presence of a charged tip of an atomic force microscope (AFM) at low electron concentration. We show that at certain concentration of electrons, only two closely placed quantum dots, both in the Coulomb blockade regime, govern conductance of the whole wire. Under this condition, two types of peculiarities - wobbling and splitting - arise in the behavior of the lines of the conductance peaks of Coulomb blockade. These peculiarities are measured in quantum-wire-based structures for the first time. We explain both peculiarities as an interplay of the conductance of two quantum dots present in the wire. Detailed modeling of wobbling behavior made in the framework of the orthodox theory of Coulomb blockade demonstrates good agreement with the obtained experimental data.
机译:我们在InAs量子线中在低电子浓度的原子力显微镜(AFM)的带电尖端存在的情况下,以线性状态在电子传输的氦气温度下进行了测量。我们表明,在一定的电子浓度下,只有两个紧密放置的量子点(都处于库仑阻塞状态)控制着整个导线的电导。在这种情况下,库仑阻塞电导峰的线的行为会产生两种类型的特性-摆动和分裂。这些特性是第一次在基于量子线的结构中进行测量。我们将这两种特性解释为导线中存在的两个量子点的电导的相互作用。在Coulomb封锁的正统理论框架内对摆动行为进行的详细建模证明与所获得的实验数据吻合良好。

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