使用Ising量子线的可编程量子退火架构

Xingze Qiu, P. Zoller, Xiaopeng Li
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引用次数: 31

摘要

量子退火旨在通过力学地制备伊辛自旋哈密顿量子的基态来有效地解决优化问题。建立量子退火炉的先决条件是实现可编程的远程二、三或多自旋伊辛相互作用。我们讨论了一种体系结构,其中所需的自旋相互作用是通过双端口实现的,或者通常是通过连接感兴趣的自旋的多端口量子Ising线实现的。这种由伊辛量子线连接的自旋量子退火结构可以通过利用原子平台的三维特性来实现,包括光学晶格中的原子和里德伯子阵列中的原子。实现只需要工程现场条件和最近相邻量子比特之间的两体相互作用。我们举例说明了少数自旋器件解决Max-Cut和质因数分解问题的方法,并讨论了扩展到大原子系统的潜力。
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Programmable Quantum Annealing Architectures with Ising Quantum Wires
Quantum annealing aims at solving optimization problems efficiently by preparing the ground state of an Ising spin-Hamiltonian quantum mechanically. A prerequisite of building a quantum annealer is the implementation of programmable long-range two-, three- or multi-spin Ising interactions. We discuss an architecture, where the required spin interactions are implemented via two-port, or in general multi-port quantum Ising wires connecting the spins of interest. This quantum annealing architecture of spins connected by Ising quantum wires can be realized by exploiting the three dimensional character of atomic platforms, including atoms in optical lattices and Rydberg tweezer arrays. The realization only requires engineering on-site terms and two-body interactions between nearest neighboring qubits. We illustrate the approach for few spin devices solving Max-Cut and prime factorization problems, and discuss the potential scaling to large atom based systems.
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