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Characterizing quantum dynamics using multipartite entanglement generation

dc.contributor.authorMalik G.R.; Shukla R.K.; Aravinda S.; Mishra S.K.
dc.date.accessioned2025-05-23T10:56:43Z
dc.description.abstractEntanglement is a defining feature of many-body quantum systems and is an essential requirement for quantum computing. It is therefore useful to study physical processes which generate entanglement within a large system, as they maybe replicated for applications involving the said requirements in quantum information processing. A possible avenue to maximize entanglement generation is to rely on the phenomena of information scrambling, i.e. transport of initially localized information throughout the system. Here the rationale is that the spread of information carries with it an inherent capacity of entanglement generation. Scrambling greatly depends upon the dynamical nature of the system Hamiltonian, and the interplay between entanglement generation and information scrambling maybe investigated taking a chain of interacting spins on a one dimensional lattice. This system is analogous to an array of qubits and this relative simplicity implies that the resulting unitary dynamics can be efficiently simulated using present-day cloud based NISQ devices. In our present work, we consider such a spin model which is made up of nearest and next nearest neighbor XXZ Model, along with an introduced coupling term λ. This coupling term serves as a tuning parameter which modifies the dynamical nature of the system from the integrable to the quantum chaotic regime. In order to quantify the entanglement generated within the system we use the more general multipartite metric which computes the average entanglement across all system bipartitions to obtain a global picture of the entanglement structure within the entire system. Further to make our study initial state independent, we consider an ensemble of random initial states and evaluate the multipartite entanglement generated for each of these states under time evolution. We find clear differences in the entanglement measures as the system undergoes through different regimes. We also analyze the fluctuations present within our entanglement metric and find a distinct pattern as we head from the integrable to the chaotic regime. © 2025 IEEE.
dc.identifier.doihttps://doi.org/10.1109/COMSNETS63942.2025.10885762
dc.identifier.urihttp://172.23.0.11:4000/handle/123456789/4224
dc.relation.ispartofseriesInternational Conference on Communication Systems and Networks, COMSNETS
dc.titleCharacterizing quantum dynamics using multipartite entanglement generation

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