Multicone Diamond Waveguides for Nanoscale Quantum Sensing.

Nano Lett

Department of Electrical and Software Engineering, University of Calgary, 2500 University Drive NW, Calgary, AB, Canada T2N 1N4.

Published: November 2023

AI Article Synopsis

  • * Researchers enhance the SNR by coupling individual NVs to specially designed diamond nanopillars, which improve the efficiency of fluorescence collection.
  • * The study confirms that taller nanopillars with tapered sides significantly boost SNR, making the devices easier to use with simpler optical equipment, ultimately enhancing measurement precision for scanning applications.

Article Abstract

The long-lived electronic spin of the nitrogen-vacancy (NV) center in diamonds is a promising quantum sensor for detecting nanoscopic magnetic and electric fields in various environments. However, the poor signal-to-noise ratio (SNR) of prevalent optical spin-readout techniques presents a critical challenge in improving measurement sensitivity. Here, we address this limitation by coupling individual NVs to optimized diamond nanopillars, thereby enhancing the collection efficiency of fluorescence. Guided by near-field optical simulations, we predict improved performance for tall (≥5 μm) pillars with tapered sidewalls. This is subsequently verified by fabricating and characterizing a representative set of structures using a newly developed nanofabrication process. We observe increased SNR for optimized devices, owing to improved emission collimation and directionality. Promisingly, these devices are compatible with low-numerical-aperture collection optics and a reduced tip radius, reducing experimental overhead and facilitating improved spatial resolution for scanning applications.

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Source
http://dx.doi.org/10.1021/acs.nanolett.3c02120DOI Listing

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