Quantum Spin Puddles and Lakes: NISQ-Era Spin Liquids from Non-Equilibrium Dynamics
Rahul Sahay, Ashvin Vishwanath, Ruben Verresen

TL;DR
This paper demonstrates how non-equilibrium Hamiltonian dynamics can efficiently create quantum spin liquids in finite regions, termed 'quantum spin lakes', offering new methods for exploring exotic states in NISQ devices.
Contribution
It introduces a dynamic projection method to generate quantum spin liquids without cooling into ground states, and proposes experimental setups for finite-sized spin liquids using Rydberg atoms.
Findings
Efficient preparation of spin liquids in finite regions via parameter sweeps.
Analytical and numerical evidence supporting the creation of quantum spin lakes.
Proposal of experiments to realize U(1) spin liquids in Rydberg atom systems.
Abstract
While many-body systems can host long-ranged entangled quantum spin liquids (QSLs), the ingredients for realizing these as ground states can be prohibitively difficult. In many circumstances, one requires (i) a constrained Hilbert space and (ii) an extensive quantum superposition. The paradigmatic example is the toric code, or spin liquid, which is a superposition of closed loop states. We show how non-equilibrium Hamiltonian dynamics can provide a streamlined route toward creating such QSLs. Rather than cooling into the ground state of a Hamiltonian, we show how a simple parameter sweep can dynamically project a family of initial product states into the constrained space, giving rise to a QSL. For the toric code, this is achieved in systems with a separation in energy scales between the - and -anyons, where one can sweep in a way that is adiabatic (sudden) with…
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Taxonomy
TopicsQuantum many-body systems · Complex Network Analysis Techniques · Opinion Dynamics and Social Influence
