Preparation of Arbitrary High-Fidelity Decoherence-Free States for a Four-Qubit Hybrid System via Whispering-Gallery-Mode Microresonator

IF 2.5 4区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY
Fang-Fang Du, Ming Ma, Wen-Yao Liu
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Abstract

With the assistance of the practical nonlinear interaction of a nitrogen-vacancy (NV) center coupled with whispering-gallery-mode (WGM) microresonator, a heralded preparation protocol of four-qubit hybrid decoherence-free states (logical qubits) is presented, where a single logical qubit encoded on the state of the hybrid system composed of two polarization photons and two NV centers is fully protected against collective decoherence. Compared with the three-qubit decoherence-free states, the four-qubit decoherence-free states have higher dimensions, stronger collective decoherence resistance, richer quantum coherence and higher fault tolerance. For an ideal photon-NV interaction, the efficiencies and fidelities of the hybrid decoherence-free states can, in principle, be close to unity. Otherwise, being directed against a nonideal interaction, the two error-heralded quantum blocks of the preparation process make their fidelities near-perfect at the expense of slight reductions of their efficiencies. Moreover, this hybrid decoherence-free states work in a heralded way and may be experimentally feasible with current technique on regulating the NV-WGM microresonator system.

Abstract Image

利用微谐振器制备四量子位混合系统的任意高保真无退相干态
利用氮空位(NV)中心与微腔(WGM)耦合的实际非线性相互作用,提出了一种四量子位混合无退相干态(逻辑量子位)的预先制备方案,该方案在由两个偏振光子和两个NV中心组成的混合系统的状态上编码一个逻辑量子位,可以完全防止集体退相干。与三量子位无退相干态相比,四量子位无退相干态具有更高的维数、更强的集体退相干阻力、更丰富的量子相干性和更高的容错性。对于理想的光子- nv相互作用,混合退相干态的效率和保真度原则上可以接近于统一。否则,在非理想相互作用的指导下,制备过程中的两个错误预示量子块以略微降低效率为代价,使它们的保真度接近完美。此外,这种混合无退相干状态以一种预示的方式工作,并且可能在实验上可行,以目前的技术来调节NV-WGM微谐振系统。
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来源期刊
Annalen der Physik
Annalen der Physik 物理-物理:综合
CiteScore
4.50
自引率
8.30%
发文量
202
审稿时长
3 months
期刊介绍: Annalen der Physik (AdP) is one of the world''s most renowned physics journals with an over 225 years'' tradition of excellence. Based on the fame of seminal papers by Einstein, Planck and many others, the journal is now tuned towards today''s most exciting findings including the annual Nobel Lectures. AdP comprises all areas of physics, with particular emphasis on important, significant and highly relevant results. Topics range from fundamental research to forefront applications including dynamic and interdisciplinary fields. The journal covers theory, simulation and experiment, e.g., but not exclusively, in condensed matter, quantum physics, photonics, materials physics, high energy, gravitation and astrophysics. It welcomes Rapid Research Letters, Original Papers, Review and Feature Articles.
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