Kavli Institute of Nanoscience, Faculty of Applied Sciences, Delft University of Technology, Lorentzweg 1, 2628 CJ, Delft, The Netherlands.
QuTech, Delft University of Technology, Lorentzweg 1, 2628 CJ, Delft, The Netherlands.
Nat Commun. 2018 Jun 11;9(1):2276. doi: 10.1038/s41467-018-04657-z.
One of the hallmark experiments of quantum transport is the observation of the quantized resistance in a point contact in GaAs/AlGaAs heterostructures. Being formed with split gate technology, these structures represent in an ideal manner equilibrium reservoirs which are connected only through a few electron mode channel. It has been a long standing goal to achieve similar experimental conditions also in superconductors. Here we demonstrate the formation of a superconducting quantum point contact (SQPC) with split gate technology in a two-dimensional superconductor, utilizing the unique gate tunability of the superfluid at the LaAlO/SrTiO interface. When the constriction is tuned through the action of metallic split gates we identify three regimes of transport: First, SQPC for which the supercurrent is carried only by a few quantum transport channels. Second, superconducting island strongly coupled to the equilibrium reservoirs. Third, charge island with a discrete spectrum weakly coupled to the reservoirs.
量子输运的标志性实验之一是在 GaAs/AlGaAs 异质结构中的点接触中观察到量子电阻。这些结构采用分裂门技术形成,以理想的方式代表仅通过少数电子模式通道连接的平衡储层。在超导体中实现类似的实验条件一直是一个长期目标。在这里,我们利用 LaAlO/SrTiO 界面上超流的独特门可调性,在二维超导体中展示了分裂门技术的超导量子点接触 (SQPC) 的形成。当通过金属分裂门的作用来调整收缩时,我们确定了三种传输模式:首先,仅由少数量子传输通道承载超导电流的 SQPC。其次,与平衡储层强烈耦合的超导岛。第三,与储层弱耦合的具有离散谱的电荷岛。