迭代组装具有空腔增强光晶格的 171Yb 原子阵列

M. A. Norciaet al.
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摘要

组装和维护可单独寻址的大型原子阵列是持续扩展基于中性原子的量子计算机和模拟器的关键要求。在这项工作中,我们展示了一种组装原子阵列的新模式,其基础是光学镊子和空腔增强光学晶格的协同组合,以及从重复填充的储库中增量填充目标阵列。在这一方案中,镊子可实现原子的微观重排,而空腔增强晶格则可创建大量具有足够深度的光学陷阱,从而实现原子的快速低损耗成像。我们利用这一方案演示了 1225 位光学陷阱阵列的近乎确定性填充(每位占 99%)。由于贮存器会反复填充新原子,因此阵列可以无限期地保持填充状态。我们预计,该协议将与量子处理器的原子中途重装兼容,这将是运行大规模纠错量子计算的关键能力,其持续时间将超过系统中单个原子的寿命。
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Iterative Assembly of 171Yb Atom Arrays with Cavity-Enhanced Optical Lattices
Assembling and maintaining large arrays of individually addressable atoms is a key requirement for continued scaling of neutral-atom-based quantum computers and simulators. In this work, we demonstrate a new paradigm for assembly of atomic arrays, based on a synergistic combination of optical tweezers and cavity-enhanced optical lattices, and the incremental filling of a target array from a repetitively filled reservoir. In this protocol, the tweezers provide microscopic rearrangement of atoms, while the cavity-enhanced lattices enable the creation of large numbers of optical traps with sufficient depth for rapid low-loss imaging of atoms. We apply this protocol to demonstrate near-deterministic filling (99% per-site occupancy) of 1225-site arrays of optical traps. Because the reservoir is repeatedly filled with fresh atoms, the array can be maintained in a filled state indefinitely. We anticipate that this protocol will be compatible with mid-circuit reloading of atoms into a quantum processor, which will be a key capability for running large-scale error-corrected quantum computations whose durations exceed the lifetime of a single atom in the system.
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