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On-chip quantum storage in a rare-earth-doped photonic nanocavity

机译:在稀土掺杂光子纳米芯片中的片上量子储存

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Rare-earth-ion doped crystals are state-of-the-art materials for optical quantum memories and quantum transducers between optical and microwave photons. Here we describe our progress towards a naiiophotonic quantum memory based on a rare-earth (Neodymium) doped yttrium orthosilicate (YSO) photonic crystal resonator. The Purcell-enhanced coupling of the 883 nm transitions of Neodymium (Nd~(3+)) ions to the nano-resonator results in increased optical depth, which could in principle facilitate highly efficient photon storage via cavity impedance matching. The atomic frequency comb (AFC) memory protocol can be implemented in the Nd:YSO nano-resonator by efficient optical pumping into the long-lived Zeeman state. Coherent optical signals can be stored and retrieved from the AFC memory. We currently measure a storage efficiency on par with a bulk crystal Nd:YSO memory that is millimeters long. Our results will enable multiplexed on-chip quantum storage and thus quantum repeater devices using rare-earth-ions.
机译:稀土离子掺杂晶体是用于光学量子存储器和光学和微波光子之间的量子换能器的最先进的材料。在这里,我们将基于稀土(钕)掺杂的钇(YSO)光子晶体谐振器的稀土(钕)掺杂钇(YSO)光子晶体谐振器来描述我们对NaiIophotonic量子记忆的进展。将钕(Nd〜(3+))离子的883nm过渡到纳米谐振器的PURCELL增强耦合导致光学深度增加,这可能是通过腔阻抗匹配的原理促进高效的光子储存。原子频梳(AFC)存储器协议可以在ND:YSO纳米谐振器中通过有效的光学泵进入长寿命的塞曼状态。可以从AFC存储器存储和检索相干光信号。我们目前衡量与散装水晶ND的储存效率:YSO Memory,即毫米长。我们的结果将使多路复用的片上量子储存以及使用稀土离子的量子中继器装置。

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