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Stabilization and operation of a Kerr-cat qubit

机译:kerr-cat qubit的稳定和操作

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摘要

Quantum superpositions of macroscopically distinct classical states-so-called Schrodinger cat states-are a resource for quantum metrology, quantum communication and quantum computation. In particular, the superpositions of two opposite-phase coherent states in an oscillator encode a qubit protected against phase-flip errors(1,2). However, several challenges have to be overcome for this concept to become a practical way to encode and manipulate error-protected quantum information. The protection must be maintained by stabilizing these highly excited states and, at the same time, the system has to be compatible with fast gates on the encoded qubit and a quantum non-demolition readout of the encoded information. Here we experimentally demonstrate a method for the generation and stabilization of Schrodinger cat states based on the interplay between Kerr nonlinearity and single-mode squeezing(1,3)in a superconducting microwave resonator(4). We show an increase in the transverse relaxation time of the stabilized, error-protected qubit of more than one order of magnitude compared with the single-photon Fock-state encoding. We perform all single-qubit gate operations on timescales more than sixty times faster than the shortest coherence time and demonstrate single-shot readout of the protected qubit under stabilization. Our results showcase the combination of fast quantum control and robustness against errors, which is intrinsic to stabilized macroscopic states, as well as the potential of of these states as resources in quantum information processing(5-8).A qubit generated and stabilized in a superconducting microwave resonator by encoding it into Schrodinger cat states produced by Kerr nonlinearity and single-mode squeezing shows intrinsic robustness to phase-flip errors.
机译:宏观上不同的古典典型状态 - 所谓的Schrodinger猫状态的量子叠加 - 是量子计量,量子通信和量子计算的资源。特别地,振荡器中的两个相对相干状态的叠加编码了防止相位翻转误差(1,2)的量子位。然而,对于这一概念来说,必须克服几种挑战,成为编码和操纵受错误保护量子信息的实用方法。必须通过稳定这些高兴奋的状态来维护保护,并且同时,该系统必须与编码量子比特的快速栅极和编码信息的量子非拆卸读数兼容。在这里,我们通过在超导微波谐振器(4)中的kerr非线性和单模挤压(1,3)之间的相互作用,实验地证明了Schrodinger猫状态的产生和稳定。与单光子套管编码相比,我们展示了稳定的误差保护Qubit的横向松弛时间的横向松弛时间的增加。我们在时间尺度上执行所有单态栅极操作超过最短相干时间速度超过六十次,并在稳定化下展示受保护的Qubit的单次读数。我们的结果展示了快速量子控制和鲁棒性的组合,误差是稳定的宏观状态的内在,以及这些状态的潜力作为量子信息处理中的资源(5-8)。将Qubit在a中产生和稳定通过将其编码到由克尔非线性和单模挤压产生的Schrodinger猫状态来进行超导微波谐振器,显示相位翻转误差的内在鲁棒性。

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  • 来源
    《Nature》 |2020年第7820期|205-209|共5页
  • 作者单位

    Yale Univ Dept Appl Phys New Haven CT 06520 USA|Paul Scherrer Inst Photon Sci Div Villigen Switzerland;

    Yale Univ Dept Appl Phys New Haven CT 06520 USA;

    Yale Univ Dept Phys New Haven CT USA;

    Yale Univ Dept Appl Phys New Haven CT 06520 USA;

    Yale Univ Dept Appl Phys New Haven CT 06520 USA;

    Inria Paris QUANTIC Team Paris France;

    Yale Univ Dept Phys New Haven CT USA;

    Yale Univ Dept Appl Phys New Haven CT 06520 USA|Univ Texas Austin Elect & Comp Engn Austin TX 78712 USA;

    Yale Univ Dept Appl Phys New Haven CT 06520 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-18 22:15:27

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