4.6 Article

Complete Bell state measurement of diamond nuclear spins under a complete spatial symmetry at zero magnetic field

Journal

APPLIED PHYSICS LETTERS
Volume 120, Issue 19, Pages -

Publisher

AIP Publishing
DOI: 10.1063/5.0088155

Keywords

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Funding

  1. Japan Society for the Promotion of Science [16H0632619, 20H05661, 19H0551929, 20K2044120]
  2. Japan Science and Technology Agency (JST) CREST (Core Research for Evolutional Science and Technology) [JPMJCR1773]
  3. JST Moonshot RD [JPMJMS2062]
  4. Ministry of Internal Affairs and Communications, Research and Development for the construction of a global quantum cryptography network [JPMI00316]
  5. Grants-in-Aid for Scientific Research [20H05661] Funding Source: KAKEN

Ask authors/readers for more resources

The ability to manipulate and read out entanglement under a zero magnetic field using geometric phase has been demonstrated, which holds great significance for building fault-tolerant quantum computers and quantum repeater networks.
The symmetry of the space where a spin qubit resides plays an essential role in the manipulation of quantum entanglement, which governs the performance of quantum information systems. Application of a magnetic field, which is usually necessary for spin manipulation and readout, inevitably breaks the spatial symmetry to induce competition among quantization axes between internal and external fields, thus limiting the purity of the entanglement. If we could manipulate and readout entanglement under a zero magnetic field, we would be able to avoid the competition among quantization axes to achieve ideally high fidelity. We here demonstrate the complete Bell state measurement, which is a core element of quantum processing, of two carbon nuclear spins in the vicinity of a diamond nitrogen-vacancy center. The demonstration was made possible by holonomic entanglement manipulations based on the geometric phase with a polarized microwave under a zero magnetic field, where the quantization axis is uniquely defined by the hyperfine field. The demonstrated scheme allows high-fidelity entanglement processing even when magnetic fields cannot be applied to the integration of superconducting and spin qubits, thereby paving the way for building fault-tolerant distributed quantum computers and quantum repeater networks.& nbsp;(C) 2022 Author(s).

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