Quantum doubles in symmetric blockade structures
Hans Peter B\"uchler, Tobias F. Maier, Simon Fell, Nicolai Lang

TL;DR
This paper presents a method to realize non-abelian topological order using simple two-body interactions inspired by Rydberg atom systems, enabling the creation and manipulation of non-abelian anyons for quantum computation.
Contribution
It provides a systematic way to construct Hamiltonians with topological order from realistic two-body interactions, including protocols for state preparation and anyonic braiding.
Findings
Constructed Hamiltonians for non-abelian quantum doubles
Proved topological order in ground states analytically
Demonstrated braiding protocols for non-abelian anyons
Abstract
Exactly solvable models of topologically ordered phases with non-abelian anyons typically require complicated many-body interactions which do not naturally appear in nature. This motivates the "inverse problem" of quantum many-body physics: given microscopic systems with experimentally realistic two-body interactions, how to design a Hamiltonian that realizes a desired topological phase? Here we solve this problem on a platform motivated by Rydberg atoms, where elementary two-level systems couple via simple blockade interactions. Within this framework, we construct Hamiltonians that realize topological orders described by non-abelian quantum double models. We analytically prove the existence of topological order in the ground state, and present efficient schemes to prepare these states. We also introduce protocols for the controlled adiabatic braiding of anyonic excitations to probe…
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Taxonomy
TopicsQuantum many-body systems · Cold Atom Physics and Bose-Einstein Condensates · Topological Materials and Phenomena
