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Quantum simulators by design: Many-body physics in reconfigurable arrays of tunnel-coupled traps

机译:Quantum Simulators通过设计:许多身体物理在可重构隧道耦合陷阱阵列中

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We present a platform for the bottom-up construction of itinerant many-body systems: ultracold atoms transferred from a Bose-Einstein condensate into freely configurable arrays of microlens generated focused-beam dipole traps. This complements traditional optical lattices and provides a different access to the field of two-dimensional quantum simulators. The ultimate control of topology, well depth, atom number, and interaction strength is matched by sufficient tunneling. We characterize the required light fields, derive the Bose-Hubbard parameters for several alkali-metal species, and investigate the loading procedures and heating mechanisms. To demonstrate the potential of this approach, we analyze coupled annular Josephson contacts exhibitingmany-body resonances.
机译:我们提供了一个平台,用于自下而上的潮流的许多身体系统:超容易从Bose-Einstein转移到可自由的可配置的微透镜阵列的微透镜产生的聚焦束偶极子捕集器中。 这补充了传统的光学格子,并提供了对二维量子模拟器领域的不同访问。 通过足够的隧道连接,拓扑,深度,原子数和相互作用强度的最终控制。 我们表征了所需的光场,导出几种碱金属物种的Bose-Hubbard参数,并研究装载程序和加热机制。 为了证明这种方法的潜力,我们分析了耦合的环形约瑟夫森联系人表现出优秀体共振。

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