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硅中掺杂原子的哈伯德模型的量子模拟。

Quantum simulation of the Hubbard model with dopant atoms in silicon.

作者信息

Salfi J, Mol J A, Rahman R, Klimeck G, Simmons M Y, Hollenberg L C L, Rogge S

机构信息

Centre for Quantum Computation and Communication Technology, School of Physics, The University of New South Wales, Sydney, New South Wales 2052, Australia.

Department of Electrical Engineering, Purdue University, West Lafayette, Indiana 47906, USA.

出版信息

Nat Commun. 2016 Apr 20;7:11342. doi: 10.1038/ncomms11342.

Abstract

In quantum simulation, many-body phenomena are probed in controllable quantum systems. Recently, simulation of Bose-Hubbard Hamiltonians using cold atoms revealed previously hidden local correlations. However, fermionic many-body Hubbard phenomena such as unconventional superconductivity and spin liquids are more difficult to simulate using cold atoms. To date the required single-site measurements and cooling remain problematic, while only ensemble measurements have been achieved. Here we simulate a two-site Hubbard Hamiltonian at low effective temperatures with single-site resolution using subsurface dopants in silicon. We measure quasi-particle tunnelling maps of spin-resolved states with atomic resolution, finding interference processes from which the entanglement entropy and Hubbard interactions are quantified. Entanglement, determined by spin and orbital degrees of freedom, increases with increasing valence bond length. We find separation-tunable Hubbard interaction strengths that are suitable for simulating strongly correlated phenomena in larger arrays of dopants, establishing dopants as a platform for quantum simulation of the Hubbard model.

摘要

在量子模拟中,多体现象是在可控量子系统中进行探究的。最近,利用冷原子对玻色 - 哈伯德哈密顿量的模拟揭示了以前隐藏的局部相关性。然而,诸如非常规超导和自旋液体等费米子多体哈伯德现象使用冷原子进行模拟则更为困难。迄今为止,所需的单格点测量和冷却仍然存在问题,而仅实现了系综测量。在此,我们利用硅中的亚表面掺杂剂,以单格点分辨率在低有效温度下模拟了双格点哈伯德哈密顿量。我们以原子分辨率测量了自旋分辨态的准粒子隧穿图谱,发现了可从中量化纠缠熵和哈伯德相互作用的干涉过程。由自旋和轨道自由度决定的纠缠随着价键长度的增加而增加。我们发现了分离可调的哈伯德相互作用强度,其适用于在更大的掺杂剂阵列中模拟强关联现象,从而确立了掺杂剂作为哈伯德模型量子模拟的一个平台。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d533/4842981/9bbf9077051f/ncomms11342-f1.jpg

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