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首页> 外文期刊>Physical review. B, Condensed Matter And Materials Physics >Fault-tolerant quantum computing with coded spins using the conditional Faraday rotation in quantum dots
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Fault-tolerant quantum computing with coded spins using the conditional Faraday rotation in quantum dots

机译:使用量子点中的条件法拉第旋转和编码自旋的容错量子计算

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We propose a scalable fault-tolerant scheme for deterministic quantum computing with spins that is based on a three-particle entanglement produced by the conditional Faraday rotation of the polarization of single photons due to the nonresonant interaction with spins of quantum dots, embedded in microcavities inside a photonic crystal. The resulting conditional phase gate yields switching times of 50 ps. We show that it acts fault-tolerantly not only on the Calderbank-Shor-Steane quantum error correction codes, but also on Shor's code in a single shot. Single-qubit operations on Shor's logical qubits can be implemented by means of the optical Stark effect combined with the optical Ruderman-Kittel-Kasuya-Yosida interaction in a single shot.
机译:我们提出了一种用于自旋的确定性量子计算的可扩展容错方案,该方案基于三粒子纠缠,该纠缠由单光子极化的条件法拉第旋转产生,这是由于与量子点自旋的非共振相互作用所致,嵌入在内部的微腔中光子晶体。产生的条件相门产生的开关时间为50 ps。我们证明,它不仅在Calderbank-Shor-Steane量子纠错码上具有容错功能,而且在单发情况下也能在Shor的代码上起作用。可以通过光学斯塔克效应与Ruderman-Kittel-Kasuya-Yosida光学相互作用相结合,对Shor逻辑量子位进行单量子位运算。

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