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Single-electron charge sensing in self-assembled quantum dots

机译:自组装量子点中的单电子电荷感应

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Measuring single-electron charge is one of the most fundamental quantum technologies. Charge sensing, which is an ingredient for the measurement of single spins or single photons, has been already developed for semiconductor gate-defined quantum dots, leading to intensive studies on the physics and the applications of single-electron charge, single-electron spin and photon–electron quantum interface. However, the technology has not yet been realized for self-assembled quantum dots despite their fascinating transport phenomena and outstanding optical functionalities. In this paper, we report charge sensing experiments in self-assembled quantum dots. We choose two adjacent dots, and fabricate source and drain electrodes on each dot, in which either dot works as a charge sensor for the other target dot. The sensor dot current significantly changes when the number of electrons in the target dot changes by one, demonstrating single-electron charge sensing. We have also demonstrated real-time detection of single-electron tunnelling events. This charge sensing technique will be an important step towards combining efficient electrical readout of single-electron with intriguing quantum transport physics or advanced optical and photonic technologies developed for self-assembled quantum dots.
机译:测量单电子电荷是最基本的量子技术之一。已经为半导体栅极定义量子点开发了用于测量单个旋转或单个光子的成分的电荷感测,这导致物理学和单电子电荷,单电子旋转和单电子旋转的应用和应用光子 - 电子量子界面。然而,尽管其迷人的运输现象和出色的光学功能,但该技术尚未实现自组装量子点。在本文中,我们报告了自组装量子点的充电感测实验。我们选择两个相邻点,并在每个点上制造源极和漏电极,其中任一点作为另一个目标点的充电传感器。当目标点中的电子的数量变化一个时,传感器点电流显着改变,展示单电子电荷感测。我们还展示了对单电子隧道事件的实时检测。该电荷检测技术将是朝着单电子的高效电读数与用于自组装量子点开发的富有量子传输物理学或高级光学和光子技术相结合的单电子读出的重要步骤。

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