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Dynamic-Disorder-Induced Enhancement of Entanglement in Photonic Quantum Walks

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arxiv 1808.09298 v1 pith:QYNKTWPJ submitted 2018-08-28 quant-ph

classification quant-ph
keywords quantumwalksentanglementenhancementgenerationstateusedachieving
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Entanglement generation in discrete time quantum walks is deemed to be another key property beyond the transport behaviors. The latter has been widely used in investigating the localization or topology in quantum walks. However, there are few experiments involving the former for the challenges in full reconstruction of the final wave function. Here, we report an experiment demonstrating the enhancement of the entanglement in quantum walks using dynamic disorder. Through reconstructing the local spinor state for each site, von Neumann entropy can be obtained and used to quantify the coin-position entanglement. We find that the enhanced entanglement in the dynamically disordered quantum walks is independent of the initial state, which is different from the entanglement generation in the Hadamard quantum walks. Our results are inspirational for achieving quantum computing based on quantum walks.

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  1. Noisy Cyclic Quantum Random Walk

    quant-ph 2024-11 conditional novelty 6.0 of 10

    In a noisy cyclic quantum walk, the eigenstate participation ratio correlates with spreading: below a numerically located noise strength near pi/3 the walker spreads, above it the walker localizes.

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