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A photonic quantum gate based on electrically controlled strong cavity coupling between a single nanocrystal quantum dot and an ultra-high Q silica micro-cavity

机译:基于单个纳米晶体量子点与超高Q二氧化硅微腔之间电控强腔耦合的光子量子门

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摘要

We investigate the use of nanocrystal quantum dots as a versatile quantum bus element for preparing various quantum resources for use in photonic quantum technologies. The ability to Stark tune nanocrystal quantum dots allows an important degree of control over the cavity QED interaction. Using this property along with the bi-exciton transition, we demonstrate a photonic CNOT interaction between two logical photonic qubits comprising two cavity field modes each. We find the CNOT interaction to be a robust generator of photonic Bell states, even with relatively large bi-exciton losses.These results are discussed in light of the current state-ofthe-art of both microcavity fabrication and recent advances in nanocrystal quantum dot technology. Overall, we find that such a scheme should be feasible in the near future with appropriate refinements to both nanocrystal fabrication technology and micro-cavity design. Such a gate could serve as an active element in photonic-based quantum technologies.
机译:我们研究使用纳米晶体量子点作为通用量子总线元件,以准备用于光子量子技术的各种量子资源。 Stark调谐纳米晶体量子点的能力允许对腔体QED相互作用进行重要程度的控制。使用此特性以及双激子跃迁,我们演示了两个逻辑光子量子位之间的光子CNOT相互作用,每个量子光子包含两个腔场模式。我们发现CNOT相互作用即使在双激子损耗相对较大的情况下也能产生可靠的光子贝尔态,这些结果是根据微腔制造的最新技术以及纳米晶体量子点技术的最新进展进行讨论的。总的来说,我们发现在适当的情况下对纳米晶体制造技术和微腔设计进行适当的改进,这样的方案在不久的将来应该是可行的。这样的门可以用作基于光子的量子技术中的有源元件。

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