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Engineering quantum hyperentangled states in atomic systems

机译:原子系统中的工程量子血清韧名状态

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摘要

Hyperentangled states have boosted many quantum informatics tasks tremendously due to their high information content per quantum entity. Until now, however, the engineering and manipulation of such states were limited to photonic systems only. In present article, we propose generating atomic hyperentanglement involving atomic internal states as well as atomic external momenta states. Hypersuperposition, hyperentangled cluster, Bell and Greenberger-Horne-Zeilinger states are engineered deterministically through resonant and off-resonant Bragg diffraction of neutral two-level atoms. Based on the characteristic parameters of the atomic Bragg diffraction, such as comparatively large interaction times and spatially well-separated outputs, such decoherence resistant states are expected to exhibit good overall fidelities and offer the evident benefits of full controllability, along with extremely high detection efficiency, over the counterpart photonic states comprised entirely of flying qubits.
机译:由于每个量子实体的高信息内容,HyperEntangled状态促进了许多量子信息学课程。然而,到目前为止,这些状态的工程和操纵仅限于光子系统。在现有的文章中,我们提出产生涉及原子内部州以及原子外部动量态的原子血清。超薄,血清簇,贝尔和格林伯格 - Horne-ZEINEER状态通过中性两级原子的共振和偏离谐振布拉格衍射来设计。基于原子布拉格衍射的特征参数,例如相对大的相互作用时间和空间良好分离的输出,预计这种抗干状态将表现出良好的整体保真度,并提供完全可控性的明显效益,以及极高的检测效率,在对手的光子状态上完全是飞行额度。

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