Mortemousque Pierre-André, Chanrion Emmanuel, Jadot Baptiste, Flentje Hanno, Ludwig Arne, Wieck Andreas D, Urdampilleta Matias, Bäuerle Christopher, Meunier Tristan
Université Grenoble Alpes, CNRS, Grenoble INP, Institut Néel, Grenoble, France.
Université Grenoble Alpes, CEA, Leti, Grenoble, France.
Nat Nanotechnol. 2021 Mar;16(3):296-301. doi: 10.1038/s41565-020-00816-w. Epub 2020 Dec 21.
The coherent manipulation of individual quantum objects organized in arrays is a prerequisite to any scalable quantum information platform. The cumulated efforts to control electron spins in quantum dot arrays have permitted the recent realization of quantum simulators and multielectron spin-coherent manipulations. Although a natural path to resolve complex quantum-matter problems and to process quantum information, two-dimensional (2D) scaling with a high connectivity of such implementations remains undemonstrated. Here we demonstrate the 2D coherent control of individual electron spins in a 3 × 3 array of tunnel-coupled quantum dots. We focus on several key quantum functionalities: charge-deterministic loading and displacement, local spin readout and local coherent exchange manipulation between two electron spins trapped in adjacent dots. This work lays some of the foundations to exploit a 2D array of electron spins for quantum simulation and information processing.
对排列成阵列的单个量子对象进行相干操控是任何可扩展量子信息平台的先决条件。在量子点阵列中控制电子自旋的累积努力使得最近实现了量子模拟器和多电子自旋相干操控。尽管这是解决复杂量子物质问题和处理量子信息的自然途径,但这种实现方式具有高连通性的二维(2D)扩展仍未得到证实。在此,我们展示了在一个由隧道耦合量子点组成的3×3阵列中对单个电子自旋的二维相干控制。我们专注于几个关键的量子功能:电荷确定性加载和位移、局部自旋读出以及捕获在相邻量子点中的两个电子自旋之间的局部相干交换操控。这项工作为利用二维电子自旋阵列进行量子模拟和信息处理奠定了一些基础。