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通过海森堡交换实现相干自旋态转移。

Coherent spin-state transfer via Heisenberg exchange.

机构信息

Department of Physics and Astronomy, University of Rochester, Rochester, NY, USA.

Department of Physics and Astronomy, Purdue University, West Lafayette, IN, USA.

出版信息

Nature. 2019 Sep;573(7775):553-557. doi: 10.1038/s41586-019-1566-8. Epub 2019 Sep 25.

Abstract

Quantum information science has the potential to revolutionize modern technology by providing resource-efficient approaches to computing, communication and sensing. Although the physical qubits in a realistic quantum device will inevitably suffer errors, quantum error correction creates a path to fault-tolerant quantum information processing. Quantum error correction, however, requires that individual qubits can interact with many other qubits in the processor. Engineering such high connectivity can pose a challenge for platforms such as electron spin qubits, which naturally favour linear arrays. Here we present an experimental demonstration of the transmission of electron spin states via the Heisenberg exchange interaction in an array of spin qubits. Heisenberg exchange coupling-a direct manifestation of the Pauli exclusion principle, which prevents any two electrons with the same spin state from occupying the same orbital-tends to swap the spin states of neighbouring electrons. By precisely controlling the wavefunction overlap between electrons in a semiconductor quadruple quantum dot array, we generate a series of coherent SWAP operations to transfer both single-spin and entangled states back and forth in the array without moving any electrons. Because the process is scalable to large numbers of qubits, state transfer through Heisenberg exchange will be useful for multi-qubit gates and error correction in spin-based quantum computers.

摘要

量子信息科学有可能通过提供资源高效的计算、通信和传感方法来彻底改变现代技术。尽管实际量子设备中的物理量子位不可避免地会出现错误,但量子纠错为容错量子信息处理创造了一条途径。然而,量子纠错要求单个量子位可以与处理器中的许多其他量子位相互作用。对于像电子自旋量子位这样的平台来说,工程上实现如此高的连接性可能是一个挑战,因为电子自旋量子位自然倾向于线性排列。在这里,我们通过在自旋量子位阵列中通过海森堡交换相互作用来展示电子自旋态的传输的实验演示。海森堡交换耦合 - 违反泡利不相容原理的直接表现,该原理阻止任何两个具有相同自旋态的电子占据相同轨道 - 倾向于交换相邻电子的自旋态。通过精确控制半导体四重量子点阵列中电子的波函数重叠,我们生成了一系列相干 SWAP 操作,以便在不移动任何电子的情况下在阵列中来回传输单自旋和纠缠态。由于该过程可扩展到大量量子位,因此通过海森堡交换进行的状态传输将对基于自旋的量子计算机中的多量子位门和纠错很有用。

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