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AI-assisted hyper-dimensional broadband quantum memory with efficiency above 90% in warm atoms

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arxiv 2503.11098 v3 pith:CAJCVIHE submitted 2025-03-14 quant-ph

classification quant-ph
keywords quantuminformationmemoryefficiencyhyper-dimensionalsignalachievedalgorithm
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High-dimensional broadband quantum memory significantly expands quantum information processing capabilities, but the memory efficiency becomes insufficient when extended to high dimensions. We demonstrate an efficient quantum memory for hyper-dimensional photons encoded with orbital angular momentum (OAM) and spin angular momentum (SAM). OAM information is encoded from -5 to +5, combined with SAM encoding, enabling up to 22 dimensions. To ensure high memory efficiency, an artificial intelligence algorithm, a modified Differential Evolution (DE) algorithm using Chebyshev sampling, is developed to obtain a perfect signal-control waveform matching. Memory efficiency is experimentally achieved at 92% for single-mode Gaussian signal, 91% for information dimension of 6 and 80% for dimensional number to 22. The fidelity is achieved up to 99% for single-mode Gaussian signal, 95.5% for OAM information, 97.4% for SAM information, and 92% for whole hyper-dimensional signal, which is far beyond no-cloning limitation. Our results demonstrate superior performance and potential applications in high-dimensional quantum information processing. This achievement provides a crucial foundation for future quantum communication and quantum computing.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Unwanted couplings can induce amplification in quantum memories despite negligible apparent noise

    quant-ph 2024-11 conditional novelty 6.0 of 10

    Unwanted couplings in NV-center and rubidium quantum memories can amplify retrieved signals past unity while apparent noise stays zero, signaling hidden quantum noise.

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