Twenty-five years of analogue quantum simulation

Nature Reviews Physics Springer Nature 5:12 (2023) 702-703

AdS/CFT correspondence with a three-dimensional black hole simulator

Physical Review B American Physical Society (APS) 108:15 (2023) 155124

Authors:

Aydin Deger, Matthew D Horner, Jiannis K Pachos

Onset of scrambling as a dynamical transition in tunable-range quantum circuits

PRX Quantum American Physical Society 4:3 (2023) 30325

Authors:

Sridevi Kuriyattil, Tomohiro Hashizume, Gregory Bentsen, Andrew J Daley

Abstract:

In a fast-scrambling many-body quantum system, information is spread and entanglement is built up on a time scale that grows logarithmically with the system size. This is of fundamental interest in understanding the dynamics of many-body systems, as well as 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 ν=-1/(1+sc), 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.

Many-body spin rotation by adiabatic passage in spin-1/2 XXZ chains of ultracold atoms

Quantum Science and Technology IOP Publishing 8:3 (2023) 035018

Authors:

Ivana Dimitrova, Stuart Flannigan, Yoo Kyung Lee, Hanzhen Lin, Jesse Amato-Grill, Niklas Jepsen, Ieva Čepaitė, Andrew J Daley, Wolfgang Ketterle

Can multipartite entanglement be characterized by two-point connected correlation functions?

Journal of Physics A: Mathematical and Theoretical IOP Publishing 56:30 (2023) 305302-305302

Authors:

Luca Lepori, Andrea Trombettoni, Domenico Giuliano, Johannes Kombe, Jorge Yago Malo, Andrew J Daley, Augusto Smerzi, Maria Luisa Chiofalo

Abstract:

We discuss under which conditions multipartite entanglement in mixed quantum states can be characterized only in terms of two-point connected correlation functions, as it is the case for pure states. In turn, the latter correlations are defined via a suitable combination of (disconnected) one- and two-point correlation functions. In contrast to the case of pure states, conditions to be satisfied turn out to be rather severe. However, we were able to identify some interesting cases, as when the point-independence is valid of the one-point correlations in each possible decomposition of the density matrix, or when the operators that enter in the correlations are (semi-)positive/negative defined