Highly tunable 2D silicon quantum dot array with coupling beyond nearest neighbors

Ning Wang, Jia-Min Kang, Wen-Long Lu, Shao-Min Wang, You-Jia Wang, Hai-Ou Li, Gang Cao, Bao-Chuan Wang, Guo-Ping Guo
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Abstract

Scaling up quantum dots to two-dimensional (2D) arrays is a crucial step for advancing semiconductor quantum computation. However, maintaining excellent tunability of quantum dot parameters, including both nearest-neighbor and next-nearest-neighbor couplings, during 2D scaling is challenging, particularly for silicon quantum dots due to their relatively small size. Here, we present a highly controllable and interconnected 2D quantum dot array in planar silicon, demonstrating independent control over electron fillings and the tunnel couplings of nearest-neighbor dots. More importantly, we also demonstrate the wide tuning of tunnel couplings between next-nearest-neighbor dots,which plays a crucial role in 2D quantum dot arrays. This excellent tunability enables us to alter the coupling configuration of the array as needed. These results open up the possibility of utilizing silicon quantum dot arrays as versatile platforms for quantum computing and quantum simulation.
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超越近邻耦合的高可调二维硅量子点阵列
将量子点放大到二维(2D)阵列是推进半导体量子计算的关键一步。然而,在二维扩展过程中保持量子点参数(包括近邻耦合和邻近耦合)的出色可调性是一项挑战,尤其是硅量子点,因为它们的尺寸相对较小。在这里,我们展示了平面硅中高度可控和互连的二维量子点阵列,证明了对电子填充和最近邻点隧道耦合的独立控制。更重要的是,我们还展示了对近邻点之间隧道耦合的广泛调谐,这在二维量子点阵列中起着至关重要的作用。这种出色的可调谐性使我们能够根据需要改变阵列的耦合配置。这些结果为利用硅量子点阵列作为量子计算和量子模拟的多功能平台提供了可能。
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