Onset of scrambling as a dynamical transition in tunable-range quantum circuits
ORAL
Abstract
In a fast scrambling many-body quantum system, information is spread and entanglement is built up on a timescale that grows logarithmically with the system size. This is of fundamental interest in understanding the dynamics of many-body systems and in efficiently producing entangled resource states and error-correcting codes. In this work, we identify a dynamical transition marking the onset of scrambling in quantum circuits with different levels of long-range connectivity. In particular, we show that as a function of the interaction range for circuits of different structures, the tripartite mutual information exhibits a scaling collapse around a critical point between two clearly defined regimes of different dynamical behavior. We study this transition analytically in a related long-range Brownian circuit model and show how the transition can be mapped onto the statistical mechanics of a long-range Ising model in a particular region of parameter space. This mapping predicts mean-field critical exponents, which are consistent with the critical exponents extracted from Clifford circuit numerics. In addition to systems with conventional power-law interactions, we identify the same phenomenon in deterministic, sparse circuits that can be realized in experiments with neutral atom arrays.
*Work at the University of Strathclyde was supported by the EPSRC (Grant No. EP/T005386/1), the EPSRC Programme Grant DesOEQ (EP/P009565/1), the EPSRC Quantum Technologies Hub for Quantum Computing and Simulation (EP/T001062/1), the European Union's Horizon 2020 research and innovation program under grant agreement No. 817482 PASQuanS, and AFOSR grant number FA9550-18-1-0064. Results were obtained using the ARCHIE-WeSt High Performance Computer (www.archie-west.ac.uk) based at the University of Strathclyde. G.B. is supported by the DOE GeoFlow program (DE-SC0019380).
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Publication:S. Kuriyattil, T. Hashizume, G. Bentsen and A. J. Daley; Onset of Scrambling as a DynamicalTransition in Tunable-Range Quantum Circuits; PRX Quantum 4 030325 (2023) T. Hashizume, S. Kuriyattil, A. J. Daley, and G. Bentsen, Tunable geometries in sparse clifford circuits, Symmetry 14, 666 (2022)