Dynamics analysis of non-inertial observers under Ohmic-induced decoherence

IF 2.8 3区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY
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引用次数: 0

Abstract

We investigate the dynamics of quantum features in a two-qubit system subjected to acceleration in one or both subsystems while interacting with Ohmic or super-Ohmic noisy reservoirs. Metrics such as quantum discord, negativity, and entropic uncertainty are deployed to analyze the dynamical map of quantum states under various conditions. Our findings suggest that increasing the number of accelerated qubits negatively impacts quantum correlations. Furthermore, assigning non-uniform values of acceleration magnitude to the two qubits also leads to higher decay and uncertainty generation. Additionally, an increase in the bosonic reservoir frequency and ohmicity parameter exhibits opposite effects to those prevailed by the purity of states by promoting decay. Notably, discord proves to be sensitive to acceleration and non-uniformity, while negativity is strongly influenced by low purity values. The role of Ohmic noisy reservoirs is emphasized, as they display less decay compared to super-Ohmic reservoirs. Overall, the super-Ohmic noisy reservoir induced higher decoherence and uncertainty, causing larger quantum correlation decay compared to the Ohmic noise.

欧姆诱导退相干条件下的非惯性观测器动力学分析
我们研究了双量子比特系统中量子特征的动力学,该系统在与欧姆或超欧姆噪声水库相互作用时,一个或两个子系统都受到加速。量子不和谐、负性和熵不确定性等指标被用来分析各种条件下量子态的动态映射。我们的研究结果表明,增加加速量子比特的数量会对量子相关性产生负面影响。此外,为两个量子比特分配不均匀的加速幅度值也会导致更高的衰变和不确定性产生。此外,玻色储层频率和欧姆参数的增加会促进衰变,与状态纯度的影响相反。值得注意的是,不和谐证明对加速和非均匀性很敏感,而消极性则受低纯度值的强烈影响。欧姆噪声水库的作用得到了强调,因为与超欧姆水库相比,它们显示出较少的衰变。总体而言,与欧姆噪声相比,超欧姆噪声水库诱发了更高的退相干性和不确定性,造成了更大的量子相关性衰减。
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来源期刊
CiteScore
7.20
自引率
9.10%
发文量
852
审稿时长
6.6 months
期刊介绍: Physica A: Statistical Mechanics and its Applications Recognized by the European Physical Society Physica A publishes research in the field of statistical mechanics and its applications. Statistical mechanics sets out to explain the behaviour of macroscopic systems by studying the statistical properties of their microscopic constituents. Applications of the techniques of statistical mechanics are widespread, and include: applications to physical systems such as solids, liquids and gases; applications to chemical and biological systems (colloids, interfaces, complex fluids, polymers and biopolymers, cell physics); and other interdisciplinary applications to for instance biological, economical and sociological systems.
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