Circuit complexity as a novel probe of quantum entanglement: a study with black hole gas in arbitrary dimensions

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dc.contributor.author Adhikari, Kiran
dc.contributor.author Choudhury, Sayantan
dc.contributor.author Chowdhury, Satyaki
dc.contributor.author Shirish, K.
dc.contributor.author wain, Abinash
dc.date.accessioned 2021-05-14T05:18:45Z
dc.date.available 2021-05-14T05:18:45Z
dc.date.issued 2021-05
dc.identifier.citation Adhikari, Kiran; Choudhury, Sayantan; Chowdhury, Satyaki; Shirish, K. and Swain, Abinash, "Circuit complexity as a novel probe of quantum entanglement: a study with black hole gas in arbitrary dimensions", arXiv, Cornell University Library, DOI: arXiv:2104.13940, May 2021. en_US
dc.identifier.uri http://arxiv.org/abs/2104.13940
dc.identifier.uri https://repository.iitgn.ac.in/handle/123456789/6461
dc.description.abstract In this article, we investigate the quantum circuit complexity and entanglement entropy in the recently studied black hole gas framework using the two-mode squeezed states formalism written in arbitrary dimensional spatially flat cosmological Friedmann-Lema'itre-Robertson-Walker (FLRW) background space-time. We compute the various complexity measures and study the evolution of these complexities by following two different prescriptions viz. Covariant matrix method and Nielsen's method. Independently, using the two-mode squeezed states formalism we also compute the Renyi and Von-Neumann entanglement entropy, which show an inherent connection between the entanglement entropy and quantum circuit complexity. We study the behaviour of the complexity measures and entanglement entropy separately for three different spatial dimensions and observe various significant different features in three spatial dimensions on the evolution of these quantities with respect to the scale factor. Furthermore, we also study the underlying behaviour of the equilibrium temperature with two of the most essential quantities i.e. rate of change of complexity with scale factor and the entanglement entropy. We observe that irrespective of the spatial dimension, the equilibrium temperature depends quartically on entanglement entropy.
dc.description.statementofresponsibility by Kiran Adhikari, Sayantan Choudhury, Satyaki Chowdhury, Shirish, K. and Abinash Swain
dc.language.iso en_US en_US
dc.publisher Cornell University Library en_US
dc.title Circuit complexity as a novel probe of quantum entanglement: a study with black hole gas in arbitrary dimensions en_US
dc.type Pre-Print en_US
dc.relation.journal arXiv


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