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Coherent transfer of electron spin correlations assisted by dephasing noise

机译:电子自旋相关性的相干传递通过消除相位噪声而得到帮助

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摘要

Quantum coherence of superposed states, especially of entangled states, is indispensable for many quantum technologies. However, it is vulnerable to environmental noises, posing a fundamental challenge in solid-state systems including spin qubits. Here we show a scheme of entanglement engineering where pure dephasing assists the generation of quantum entanglement at distant sites in a chain of electron spins confined in semiconductor quantum dots. One party of an entangled spin pair, prepared at a single site, is transferred to the next site and then adiabatically swapped with a third spin using a transition across a multi-level avoided crossing. This process is accelerated by the noise-induced dephasing through a variant of the quantum Zeno effect, without sacrificing the coherence of the entangled state. Our finding brings insight into the spin dynamics in open quantum systems coupled to noisy environments, opening an avenue to quantum state manipulation utilizing decoherence effects.
机译:叠加态,特别是纠缠态的量子相干性对于许多量子技术都是必不可少的。但是,它易受环境噪声的影响,这对包括自旋量子位的固态系统构成了根本性挑战。在这里,我们展示了一个纠缠工程方案,其中纯相移有助于限制在半导体量子点中的电子自旋链中远处的量子纠缠。在单个位点准备的纠缠自旋对的一方转移到下一个位点,然后使用跨多级避免交叉的过渡绝热地与第三次自旋交换。在不牺牲纠缠态相干性的前提下,通过量子芝诺效应的变体,噪声引起的移相加快了这一过程。我们的发现使人们对与噪声环境耦合的开放量子系统中的自旋动力学有了更深入的了解,从而为利用退相干效应进行量子态操纵开辟了道路。

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