Coherent transfer of electron spin correlations assisted by dephasing noise

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 wh...

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Veröffentlicht in:Nature communications 2018-05, Vol.9 (1), p.2133-8, Article 2133
Hauptverfasser: Nakajima, Takashi, Delbecq, Matthieu R., Otsuka, Tomohiro, Amaha, Shinichi, Yoneda, Jun, Noiri, Akito, Takeda, Kenta, Allison, Giles, Ludwig, Arne, Wieck, Andreas D., Hu, Xuedong, Nori, Franco, Tarucha, Seigo
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Sprache:eng
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Zusammenfassung: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. Methods for coherently transferring quantum states are needed in order to develop larger scale quantum devices. Here the authors implement an adiabatic transfer protocol in a triple quantum dot and show that dephasing noise can accelerate the process while maintaining the coherence of the transferred state.
ISSN:2041-1723
2041-1723
DOI:10.1038/s41467-018-04544-7