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用于混合固态自旋寄存器的退相干保护量子门。

Decoherence-protected quantum gates for a hybrid solid-state spin register.

机构信息

Kavli Institute of Nanoscience, Delft University of Technology, PO Box 5046, 2600 GA Delft, The Netherlands.

出版信息

Nature. 2012 Apr 4;484(7392):82-6. doi: 10.1038/nature10900.

DOI:10.1038/nature10900
PMID:22481361
Abstract

Protecting the dynamics of coupled quantum systems from decoherence by the environment is a key challenge for solid-state quantum information processing. An idle quantum bit (qubit) can be efficiently insulated from the outside world by dynamical decoupling, as has recently been demonstrated for individual solid-state qubits. However, protecting qubit coherence during a multi-qubit gate is a non-trivial problem: in general, the decoupling disrupts the interqubit dynamics and hence conflicts with gate operation. This problem is particularly salient for hybrid systems, in which different types of qubit evolve and decohere at very different rates. Here we present the integration of dynamical decoupling into quantum gates for a standard hybrid system, the electron-nuclear spin register. Our design harnesses the internal resonance in the coupled-spin system to resolve the conflict between gate operation and decoupling. We experimentally demonstrate these gates using a two-qubit register in diamond operating at room temperature. Quantum tomography reveals that the qubits involved in the gate operation are protected as accurately as idle qubits. We also perform Grover's quantum search algorithm, and achieve fidelities of more than 90% even though the algorithm run-time exceeds the electron spin dephasing time by two orders of magnitude. Our results directly allow decoherence-protected interface gates between different types of solid-state qubit. Ultimately, quantum gates with integrated decoupling may reach the accuracy threshold for fault-tolerant quantum information processing with solid-state devices.

摘要

保护耦合量子系统免受环境退相干的影响是固态量子信息处理的一个关键挑战。最近已经证明,通过动态去耦可以有效地将空闲量子位(qubit)与外部世界隔离开来。然而,在多量子比特门期间保护量子比特的相干性是一个具有挑战性的问题:通常情况下,去耦会破坏量子比特之间的动力学,从而与门操作产生冲突。对于混合系统来说,这个问题尤为突出,因为不同类型的量子比特以非常不同的速率演化和退相干。在这里,我们提出了一种将动态去耦集成到标准混合系统(电子-核自旋寄存器)量子门中的方法。我们的设计利用了耦合自旋系统中的内部共振来解决门操作和去耦之间的冲突。我们在室温下的金刚石中使用双量子比特寄存器实验验证了这些门。量子层析成像表明,参与门操作的量子比特的保护精度与空闲量子比特一样高。我们还执行了 Grover 的量子搜索算法,即使算法运行时间超过电子自旋退相时间两个数量级,仍能实现超过 90%的保真度。我们的结果直接允许不同类型的固态量子比特之间具有去耦保护的接口门。最终,具有集成去耦的量子门可能会达到使用固态器件进行容错量子信息处理的精度阈值。

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