4.7 Article

Demonstrating the power of quantum computers, certification of highly entangled measurements and scalable quantum nonlocality

Journal

NPJ QUANTUM INFORMATION
Volume 7, Issue 1, Pages -

Publisher

NATURE PORTFOLIO
DOI: 10.1038/s41534-021-00450-x

Keywords

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Funding

  1. Swiss National Science Foundation (NCCR-QSIT)
  2. Swiss National Science Foundation (NCCR-SwissMAP)
  3. Swiss National Science Foundation (Early Mobility Fellowship) [P2GEP2 194800]
  4. Air Force Office of Scientific Research [FA9550-19-1-0202]
  5. Swiss National Science Foundation (Starting grant DIAQ)
  6. Swiss National Science Foundation [200021_188541]
  7. Swiss National Science Foundation (SNF) [P2GEP2_194800, 200021_188541] Funding Source: Swiss National Science Foundation (SNF)

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This study demonstrates the capabilities of state-of-the-art IBM quantum computers in correlation experiments inspired by quantum networks, showcasing the ability of quantum computers to surpass classical limitations and certify scalable entangled measurements.
Increasingly sophisticated quantum computers motivate the exploration of their abilities in certifying genuine quantum phenomena. Here, we demonstrate the power of state-of-the-art IBM quantum computers in correlation experiments inspired by quantum networks. Our experiments feature up to 12 qubits and require the implementation of paradigmatic Bell-State Measurements for scalable entanglement-swapping. First, we demonstrate quantum correlations that defy classical models in up to nine-qubit systems while only assuming that the quantum computer operates on qubits. Harvesting these quantum advantages, we are able to certify 82 basis elements as entangled in a 512-outcome measurement. Then, we relax the qubit assumption and consider quantum nonlocality in a scenario with multiple independent entangled states arranged in a star configuration. We report quantum violations of source-independent Bell inequalities for up to ten qubits. Our results demonstrate the ability of quantum computers to outperform classical limitations and certify scalable entangled measurements.

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