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Nanophotonic quantum sensing with engineered spin-optic coupling

  • Laura Kim
  • , Hyeongrak Choi
  • , Matthew E. Trusheim
  • , Hanfeng Wang
  • , Dirk R. Englund
  • Massachusetts Institute of Technology
  • University of California at Los Angeles
  • U.S. Army Research Laboratory

Research output: Contribution to journalArticlepeer-review

20 Scopus citations

Abstract

Nitrogen vacancy centers in diamond provide a spin-based qubit system with long coherence time even at room temperature, making them suitable ambient-condition quantum sensors for quantities including electromagnetic fields, temperature, and rotation. The optically addressable level structures of NV spins allow transduction of spin information onto light-field intensity. The sub-optimal readout fidelity of conventional fluorescence measurement remains a significant drawback for room-temperature ensemble sensing. Here, we discuss nanophotonic interfaces that provide opportunities to achieve near-unity readout fidelity based on IR absorption via resonantly enhanced spin-optic coupling. Spin-coupled resonant nanophotonic devices are projected to particularly benefit applications that utilize micro- to nanoscale sensing volume and to outperform present methods in their volume-normalized sensitivity.

Original languageEnglish
Pages (from-to)441-449
Number of pages9
JournalNanophotonics
Volume12
Issue number3
DOIs
StatePublished - Feb 1 2023

Keywords

  • IR absorption readout
  • NV diamond
  • magnetic imaging
  • magnetometry
  • quantum diamond microscopy
  • quantum sensing

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