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Chip-scale atomic diffractive optical elements

机译:芯片级原子衍射光学元件

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The efficient light-matter interaction and discrete level structure of atomic vapors made possible numerous seminal scientific achievements including time-keeping, extreme non-linear interactions, and strong coupling to electric and magnetic fields in quantum sensors. As such, atomic systems can be regarded as a highly resourceful quantum material platform. Recently, the field of thin optical elements with miniscule features has been extensively studied demonstrating an unprecedented ability to control photonic degrees of freedom. Hybridization of atoms with such thin optical devices may offer a material system enhancing the functionality of traditional vapor cells. Here, we demonstrate chip-scale, quantum diffractive optical elements which map atomic states to the spatial distribution of diffracted light. Two foundational diffractive elements, lamellar gratings and Fresnel lenses, are hybridized with atomic vapors demonstrating exceptionally strong frequency-dependent, non-linear and magneto-optic behaviors. Providing the design tools for chip-scale atomic diffractive optical elements develops a path for compact thin quantum-optical elements.
机译:原子蒸汽的有效灯具相互作用和离散水平结构使得具有多种开发的科学成果,包括时间保持的,极端的非线性相互作用,以及量子传感器中的电磁场强的强耦合。因此,原子系统可以被视为高度智慧的量子材料平台。最近,已经广泛研究了具有微型特征的薄光学元件领域,证明了控制光子自由度的前所未有的能力。具有这种薄型光学装置的原子杂交可以提供增强传统蒸汽细胞的功能的材料系统。这里,我们展示芯片级,量子衍射光学元件将原子状态映射到衍射光的空间分布。两个基础衍射元件,层状光栅和菲涅耳透镜与原子蒸汽杂交,示出了异常强的频率依赖性,非线性和磁光行为。提供芯片尺度原子衍射光学元件的设计工具,开发了一种用于紧凑薄量子光学元件的路径。

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