Quantum state complexity meets many-body scars

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dc.contributor.author Nandy, Sourav
dc.contributor.author Mukherjee, Bhaskar
dc.contributor.author Bhattacharyya, Arpan
dc.contributor.author Banerjee, Aritra
dc.coverage.spatial United Kingdom
dc.date.accessioned 2024-01-25T07:18:09Z
dc.date.available 2024-01-25T07:18:09Z
dc.date.issued 2024-04
dc.identifier.citation Nandy, Sourav; Mukherjee, Bhaskar; Bhattacharyya, Arpan and Banerjee, Aritra, "Quantum state complexity meets many-body scars", Journal of Physics: Condensed Matter, DOI: 10.1088/1361-648X/ad1a7b, vol. 36, no. 15, Apr. 2024.
dc.identifier.issn 0953-8984
dc.identifier.issn 1361-648X
dc.identifier.uri https://doi.org/10.1088/1361-648X/ad1a7b
dc.identifier.uri https://repository.iitgn.ac.in/handle/123456789/9693
dc.description.abstract Scar eigenstates in a many-body system refers to a small subset of non-thermal finite energy density eigenstates embedded into an otherwise thermal spectrum. This novel non-thermal behaviour has been seen in recent experiments simulating a one-dimensional PXP model with a kinetically-constrained local Hilbert space realised by a chain of Rydberg atoms. We probe these small sets of special eigenstates starting from particular initial states by computing the spread complexity associated to time evolution of the PXP hamiltonian. Since the scar subspace in this model is embedded only loosely, the scar states form a weakly broken representation of the Lie algebra. We demonstrate why a careful usage of the forward scattering approximation (FSA), instead of any other method, is required to extract the most appropriate set of Lanczos coefficients in this case as the consequence of this approximate symmetry. Only such a method leads to a well defined notion of a closed Krylov subspace and consequently, that of spread complexity. We show this using three separate initial states, namely |Z2 > |Z3> and the vacuum state, due to the disparate classes of scar states hosted by these sectors. We also discuss systematic methods of remedying the imperfections in the FSA setup stemming from these approximate symmetries.
dc.description.statementofresponsibility by Sourav Nandy, Bhaskar Mukherjee, Arpan Bhattacharyya and Aritra Banerjee
dc.format.extent vol. 36, no. 15
dc.language.iso en_US
dc.publisher IOP Publishing
dc.subject Quantum dynamics
dc.subject Quantum many-bodyscars
dc.subject Rydberg atoms
dc.subject Krylov complexity
dc.subject Lanczos algorithm
dc.subject Quantum complexity
dc.title Quantum state complexity meets many-body scars
dc.type Article
dc.relation.journal Journal of Physics: Condensed Matter


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