Australian Research Council Centre of Excellence for Quantum Computation and Communication Technology, School of Physics , University of New South Wales , Sydney , New South Wales 2052 , Australia.
Nano Lett. 2018 Jul 11;18(7):4081-4085. doi: 10.1021/acs.nanolett.8b00006. Epub 2018 Jun 4.
We present a donor-based quadruple-quantum-dot device, designed to host two singlet-triplet qubits fabricated by scanning tunnelling microscope lithography, with just two leads per qubit. The design is geometrically compact, with each pair of dots independently controlled via one gate and one reservoir. The reservoirs both supply electrons for the dots and measure the singlet-triplet state of each qubit via dispersive sensing. We verify the locations of the four phosphorus donor dots via an electrostatic model of the device. We study one of the observed singlet-triplet states with a tunnel coupling of 39 GHz and a S-to- T decay of 2 ms at zero detuning. We measure a 5 GHz electrostatic interaction between two pairs of dots separated by 65 nm. The results outline a low-gate-density pathway to a scalable 1D building block of atomic-precision singlet-triplet qubits using donors with dispersive readout.
我们提出了一种基于供体的四重量子点器件,旨在容纳两个由扫描隧道显微镜光刻技术制备的单重态-三重态量子比特,每个量子比特仅需两个引线。该设计在几何上紧凑,每个点对都通过一个栅极和一个储库独立控制。储库都为点提供电子,并通过分散感应测量每个量子比特的单重态-三重态状态。我们通过器件的静电模型验证了四个磷供体点的位置。我们研究了观察到的单重态-三重态状态之一,其隧道耦合为 39 GHz,在零失谐时 S 到 T 的衰减为 2 ms。我们测量了两对相隔 65nm 的点之间的 5GHz 静电相互作用。结果概述了一种低栅密度途径,使用具有分散读出功能的供体,实现基于原子精度单重态-三重态量子比特的可扩展 1D 构建块。