4.8 Article

Quantum entanglement at ambient conditions in a macroscopic solid-state spin ensemble

Journal

SCIENCE ADVANCES
Volume 1, Issue 10, Pages -

Publisher

AMER ASSOC ADVANCEMENT SCIENCE
DOI: 10.1126/sciadv.1501015

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Funding

  1. Air Force Office of Scientific Research
  2. NSF [DMR-1306300]
  3. NSF Materials Research Science and Engineering Centers
  4. Department of Energy-Basic Energy Sciences [DE-AC02-07CH11358]
  5. Division Of Materials Research
  6. Direct For Mathematical & Physical Scien [1306300] Funding Source: National Science Foundation

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Entanglement is a key resource for quantum computers, quantum-communication networks, and high-precision sensors. Macroscopic spin ensembles have been historically important in the development of quantum algorithms for these prospective technologies and remain strong candidates for implementing them today. This strength derives from their long-lived quantum coherence, strong signal, and ability to couple collectively to external degrees of freedom. Nonetheless, preparing ensembles of genuinely entangled spin states has required high magnetic fields and cryogenic temperatures or photochemical reactions. We demonstrate that entanglement can be realized in solid-state spin ensembles at ambient conditions. We use hybrid registers comprising of electron-nuclear spin pairs that are localized at color-center defects in a commercial SiC wafer. We optically initialize 10(3) identical registers in a 40-mu m(3) volume (with 0: 95(-0.07)(+0.05) fidelity) and deterministically prepare them into the maximally entangled Bell states (with 0.88 +/- 0.07 fidelity). To verify entanglement, we develop a register-specific quantum-state tomography protocol. The entanglement of a macroscopic solid-state spin ensemble at ambient conditions represents an important step toward practical quantum technology.

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