Projects per year
Abstract
We investigate different geometries of spin-1/2 nitrogen impurity channels for distributing entanglement between pairs of remote nitrogen vacancy centers (NVs) in diamond. To go beyond the system size limits imposed by directly solving the master equation, we implement a matrix product operator method to describe the open system dynamics. In so doing, we provide an early demonstration of how the time-evolving block decimation algorithm can be used for answering a problem related to a real physical system that could not be accessed by other methods. For a fixed NV separation there is an interplay between incoherent impurity spin decay and coherent entanglement transfer: Long-transfer-time, few-spin systems experience strong dephasing that can be overcome by increasing the number of spins in the channel. We examine how missing spins and disorder in the coupling strengths affect the dynamics, finding that in some regimes a spin ladder is a more effective conduit for information than a single-spin chain.
Original language | English |
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Article number | 032302 |
Number of pages | 6 |
Journal | Physical Review. A, Atomic, molecular, and optical physics |
Volume | 94 |
Issue number | 3 |
DOIs | |
Publication status | Published - 1 Sept 2016 |
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Dive into the research topics of 'Designing spin-channel geometries for entanglement distribution'. Together they form a unique fingerprint.Projects
- 1 Finished
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Understand Bose-Einstein Conden of Light: Understanding Bose-Einstein condensation of Light
Kirton, P. G. (PI)
1/01/15 → 31/12/17
Project: Fellowship
Datasets
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Data underpinning - Designing spin-channel geometries for entanglement distribution
Kirton, P. G. (Creator), Levi, E. K. (Creator) & Lovett, B. W. (Creator), University of St Andrews, 2 Sept 2016
DOI: 10.17630/9f4a250d-16e6-4bb3-9e84-ec2d87635387
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