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Subwavelength vacuum lattices and atom–atom interactions in two-dimensional photonic crystals

机译:二维光子晶体中的亚波长真空晶格和原子-原子相互作用

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摘要

Quantum simulation with cold atoms in optical lattices is an attractive avenue for explorations of quantum many-body physics. A principal challenge in the field is to increase the energy and length scales in current set-ups, thereby reducing temperature and coherence-time requirements. Here, we present a new paradigm for high-density, two-dimensional optical lattices in photonic crystal waveguides. Specially engineered two-dimensional photonic crystals provide a practical platform to trap atoms and engineer their interactions in ways that surpass the limitations of current technologies and enable investigations of novel quantum many-body matter. Our schemes remove the constraint on the lattice constant set by the free-space optical wavelength in favour of deeply sub-wavelength atomic arrays. We further describe possibilities for atom–atom interactions mediated by photons in two-dimensional photonic crystal waveguides with energy scales several orders of magnitude larger than for exchange interactions in free-space lattices and with the capability to engineer strongly long-range interactions.
机译:用光学晶格中的冷原子进行量子模拟是探索量子多体物理学的一种有吸引力的途径。该领域的主要挑战是增加电流设置中的能量和长度比例,从而降低温度和相干时间要求。在这里,我们为光子晶体波导中的高密度二维光学晶格提供了新的范例。经过特殊设计的二维光子晶体提供了一个实用的平台,可以捕获原子并以超越当前技术局限性的方式设计其相互作用,并能够研究新型的量子多体物质。我们的方案消除了自由空间光波长对晶格常数的限制,转而支持深亚波长原子阵列。我们进一步描述了二维光子晶体波导中光子介导的原子与原子相互作用的可能性,其能量尺度比自由空间晶格中的交换相互作用大几个数量级,并且能够进行强力的长程相互作用。

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