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A 2D quantum walk simulation of two-particle dynamics.
Andreas Schreiber1, Aurél Gábris, Peter P Rohde
1Applied Physics, University of Paderborn, Warburger Straße 100, 33098 Paderborn, Germany. andreas.schreiber@uni-paderborn.de
Researchers demonstrate a flexible 2D optical quantum walk on an optical fiber network, simulating entanglement and nonlinear effects for complex quantum system research.
Area of Science:
- Quantum Information Science
- Condensed Matter Physics
- Optical Physics
Background:
- Multidimensional quantum walks offer insights into topological structures.
- They are valuable tools for simulating quantum information and transport phenomena.
Purpose of the Study:
- To present a flexible implementation of a two-dimensional (2D) optical quantum walk.
- To demonstrate a scalable quantum walk on a nontrivial graph structure.
- To simulate quantum phenomena like entanglement and nonlinear effects.
Main Methods:
- Utilized an optical fiber network for a coherent quantum walk.
- Implemented a broad spectrum of quantum coins for versatile simulations.
- Introduced dynamic control for investigating nonlinearities and scattering.
Main Results:
- Achieved a coherent quantum walk over 12 steps and 169 positions.
- Successfully simulated the creation of entanglement in bipartite systems.
- Investigated effects of strong nonlinearities and two-particle scattering.
Conclusions:
- The implemented 2D optical quantum walk is a scalable platform.
- Quantum walks show significant potential for simulating complex quantum systems.
- This work advances the simulation capabilities for quantum information and transport.
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