Kinetically Constrained Quantum Dynamics in Superconducting Circuits
Riccardo J. Valencia-Tortora, Nicola Pancotti, Jamir Marino

TL;DR
This paper explores the dynamical behavior of a bosonic quantum East model in superconducting circuits, demonstrating localization phenomena, state construction, and potential for quantum information preservation in experimental setups.
Contribution
It introduces a bosonic version of the quantum East model with localization properties, and proposes its implementation in superconducting circuits for studying kinetically constrained dynamics.
Findings
Localization of many-body states achieved with repulsive interactions
Quantum information remains localized despite dissipation
Implementation feasible with current superconducting circuit technology
Abstract
We study the dynamical properties of the bosonic quantum East model at low temperature. We show that a naive generalization of the corresponding spin-1/2 quantum East model does not posses analogous slow dynamical properties. In particular, conversely to the spin case, the bosonic ground state turns out to be not localized. We restore localization by introducing a repulsive interaction term. The bosonic nature of the model allows us to construct rich families of many-body localized states, including coherent, squeezed and cat states. We formalize this finding by introducing a set of superbosonic creation-annihilation operators which satisfy the bosonic commutation relations and, when acting on the vacuum, create excitations exponentially localized around a certain site of the lattice. Given the constrained nature of the model, these states retain memory of their initial conditions for…
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