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Defect Engineering for Quantum Grade Rare-Earth Nanocrystals

机译:量子级稀土纳米晶体缺陷工程

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Nanostructured systems that combine optical and spin transitions offer new functionalities for quantum technologies by providing efficient quantum light–matter interfaces. Rare-earth (RE) ion-doped nanoparticles are promising in this field as they show long-lived optical and spin quantum states. However, further development of their use in highly demanding applications, such as scalable single-ion-based quantum processors, requires controlling defects that currently limit coherence lifetimes. In this work, we show that a post-treatment process that includes multistep high-temperature annealing followed by high-power microwave oxygen plasma processing advantageously improves key properties for quantum technologies. We obtain single crystalline Eu~(3+):Y_(2)O_(3) nanoparticles (NPs) of 100 nm diameter, presenting bulk-like inhomogeneous line widths (Γ_(inh)) and population lifetimes (T _(1)). Furthermore, a significant coherence lifetime (T _(2)) extension, up to a factor of 5, is successfully achieved by modifying the oxygen-related point defects in the NPs by the oxygen plasma treatment. These promising results confirm the potential of engineered RE NPs to integrate devices such as cavity-based single-photon sources, quantum memories, and processors. In addition, our strategy could be applied to a large variety of oxides to obtain outstanding crystalline quality NPs for a broad range of applications.
机译:结合光学和旋转过渡的纳米结构系统通过提供高效的量子浅件界面来提供量子技术的新功能。稀土(RE)离子掺杂的纳米颗粒在该领域中具有很大的是,它们显示出长寿命的光学和旋转量子状态。然而,在高苛刻的应用中进一步发展,例如可缩放的单离子基量子处理器,需要控制当前限制一生的缺陷。在这项工作中,我们表明包括多步高温退火的后处理过程,然后是高功率微波氧等离子体处理有利地提高了量子技术的关键特性。我们获得单晶EU〜(3 +):Y_(2)O_(3)纳米颗粒(NPS)直径为100nm,呈现堆积的不均匀线宽(γ_(inh))和群体寿命( t _ (1))。此外,通过通过氧等离子体处理改变NPS中的氧相关点缺陷,成功地实现了显着的相干寿命( T _(2))延伸,其延伸至5倍。这些有前途的结果证实了设计的RE NP的潜力,以集成基于腔的单光子源,量子存储器和处理器等设备。此外,我们的策略可以应用于各种氧化物,以获得卓越的晶体质量NP,用于广泛的应用。

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