用于量子模拟的冷圆形里德伯原子的制备和激光俘获

R. Cortiñas
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摘要

我们提出了一种新的自旋1/2阵列的量子模拟范式,提供了前所未有的灵活性,并允许人们基于激光捕获的圆形里德伯原子探索尚未探索的领域。长本征原子寿命,结合其微波自发辐射的抑制和可忽略的光电离,使在分钟范围内的操作成为现实。所提出的模拟器实现了XXZ自旋-1/2哈密顿量,其最近邻耦合范围从几到几万赫兹。所有的模型参数都可以随意动态调整,从而实现大范围的仿真。因此,系统演化可以被跟踪足够长的时间,以便与基态绝热制备以及热化和无序的研究相关。在本文中,作为实现该量子模拟方案的第一步,我们(i)演示了在4,2 K低温环境中制备冷圆形里德伯态,并从冷原子云中获得光学通道。它们的寿命表明其有效微波黑体温度为11±2 K。我们(ii)评估了单量子位相干时间(268±5 μs)和寿命(3.7±0.1 ms),最后,我们(iii)演示了圆形里德伯原子的激光捕获,以证明它们在10 ms的时间尺度上可以忽略不计的光电离。
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Preparation and Laser Trapping of Cold Circular Rydberg Atoms for Quantum Simulation
We propose a new paradigm for quantum simulation of spin-1/2 arrays, providing unprecedented flexibility and allowing one to explore domains that remain unexplored, based on laser-trapped circular Rydberg atoms. The long intrinsic atomic lifetimes, combined with the inhibition of their microwave spontaneous emission and their negligible photoionisation, make operation in the minute range realistic. The proposed simulator realizes an XXZ spin-1/2 Hamiltonian, with nearest-neighbour couplings ranging from a few to tens of kilohertz. All the model parameters can be dynamically tuned at will, making a large range of simulations accessible. Thus, the system evolution can be followed long enough to be relevant for ground-state adiabatic preparation and for the study of thermalization and disorder. In this thesis, as a first step towards the implementation of this quantum simulation scheme, we (i) demonstrate the preparation of cold circular Rydberg states in a 4,2 K cryogenic environment with optical access out of a cold atom cloud. Their lifetime reveals an effective microwave black-body temperature of 11±2 K. We (ii) assess the single qubit coherence time (268±5 μs) and lifetime (3,7±0,1 ms), and, finally, we (iii) demonstrate the laser trapping of circular Rydberg atoms to prove their negligible photoionisation at the timescale of 10 ms.
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