作为量子线的空间绝热通道

A. Greentree, L. M. Jong, J. Donkelaar, S. Devitt, Jared H. Cole, Ashley M. Stephens, David N. Jamieson, L. Hollenberg
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引用次数: 0

摘要

在可扩展量子计算机体系结构中,量子比特传输对于提高量子纠错阈值至关重要。在固态中引入实际的传输是有问题的,但在硅中磷的实现中,我们已经展示了一种有趣的量子比特传输绝热协议,相干隧道绝热通道(CTAP)。在这里,我们回顾了CTAP作为量子线的作用,重点介绍了传输链长度增加时的协议和时间尺度。我们还强调了CTAP的扩展,以产生空间叠加态,这证明了量子电子结构在量子光学系统上的一些灵活性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Spatial adiabatic passage as a quantum wire
Qubit transport has been identified as vital in improving quantum error correction thresholds in scalable quantum computer architectures. Introducing practical transport in the solid-state is problematic, but in phosphorus in silicon implementations we have shown an interesting adiabatic protocol for qubit transfer, coherent tunneling adiabatic passage (CTAP). Here we review the role of CTAP as a quantum wire, highlighting the protocol and the temporal scaling as the length of the transport chain is increased. We also highlight an extension of CTAP to generate spatial superposition states which demonstrates some of the flexibility of quantum electronic structures over quantum optical systems.
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