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Trapped Ion Quantum Computing

How to Suppress Dark States in Quantum Networks and Bio-Engineered Structures

arXiv
Authors: T. P. Le, Ludovica Donati, Simone Severini, Filippo Caruso

Year

2017

Paper ID

44435

Status

Preprint

Abstract Read

~2 min

Abstract Words

155

Citations

N/A

Abstract

Transport across quantum networks underlies many problems, from state transfer on a spin network to energy transport in photosynthetic complexes. However, networks can contain dark subspaces that block the transportation, and various methods used to enhance transfer on quantum networks can be viewed as equivalently avoiding, modifying, or destroying the dark subspace. Here, we exploit graph theoretical tools to identify the dark subspaces and show that asymptotically almost surely they do not exist for large networks, while for small ones they can be suppressed by properly perturbing the coupling rates between the network nodes. More specifically, we apply these results to describe the recently experimentally observed and robust transport behaviour of the electronic excitation travelling on a genetically-engineered light-harvesting cylinder (M13 virus) structure. We believe that these mainly topological tools may allow us to better infer which network structures and dynamics are more favourable to enhance transfer of energy and information towards novel quantum technologies.

Why This Paper Matters

  • This paper contributes to the Trapped-Ion Quantum Computing research area in the Quantum Articles archive.
  • It adds a 2017 reference point for readers tracking recent quantum research.
  • Transport across quantum networks underlies many problems, from state transfer on a spin network to energy transport in photosynthetic complexes.

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