Abstract
Investigating the favorable configurations for non-classical correlations preservation has remained a hotly debated topic for the last decade. In this regard, we present a two-qubit Heisenberg spin chain system exposed to a time-dependent external magnetic field. The impact of various crucial parameters, such as initial strength and angular frequency of the external magnetic field along with the state’s purity and anisotropy of the spin-spin on the dynamical behavior of quantum correlations are considered. We utilize local quantum uncertainty (LQU) and quantum interferometric power (QIP) to investigate the dynamics of quantum correlations. We show that under the critical angular frequency of the external magnetic field and the spin-spin anisotropy, quantum correlations in the system can be successfully preserved. LQU and QIP suffer a drop as the interaction between the system and field is initiated, however, are quickly regained by the system. This tendency is confirmed by computing a measure of non-classical correlations according to the Clauser–Horne–Shimony–Holt inequality. Notably, the initial and final preserved levels of quantum correlations are only varied when variation is caused in the state’s purity.
Subject
General Physics and Astronomy
Reference60 articles.
1. Measures and applications of quantum correlations;Adesso;J. Phys. A Math. Theor.,2016
2. Quantum entanglement;Horodecki;Rev. Mod. Phys.,2009
3. Entanglement characterization by single-photon counting with random noise;Czerwinski;Quantum Inf. Comput.,2022
4. Gravitationally induced entanglement between two massive particles is sufficient evidence of quantum effects in gravity;Marletto;Phys. Rev. Lett.,2017
5. Sustainable entanglement production from a quantum field;Brown;Phys. Rev. A,2013
Cited by
11 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献