Diamond Surface Functionalization via Visible Light-Driven C-H Activation for Nanoscale Quantum Sensing
Abstract
Nitrogen-vacancy centers in diamond are a promising platform for nanoscale nuclear magnetic resonance sensing. Despite significant progress towards using NV centers to detect and localize nuclear spins down to the single spin level, NV-based spectroscopy of individual, intact, arbitrary target molecules remains elusive. NV molecular sensing requires that target molecules are immobilized within a few nanometers of NV centers with long spin coherence time. The inert nature of diamond typically requires harsh functionalization techniques such as thermal annealing or plasma processing, limiting the scope of functional groups that can be attached to the surface. Solution-phase chemical methods can be more readily generalized to install diverse functional groups, but they have not been widely explored for single-crystal diamond surfaces. Moreover, realizing shallow NV centers with long spin coherence times requires highly ordered single-crystal surfaces, and solution-phase functionalization has not yet been shown to be compatible with such demanding conditions. In this work, we report a versatile strategy to directly functionalize C-H bonds on single-crystal diamond surfaces under ambient conditions using visible light. This functionalization method is compatible with charge stable NV centers within 10 nm of the surface with spin coherence times comparable to the state of the art. As a proof of principle, we use shallow ensembles of NV centers to detect nuclear spins from functional groups attached to the surface. Our approach to surface functionalization based on visible light-driven C-H bond activation opens the door to deploying NV centers as a broad tool for chemical sensing and single-molecule spectroscopy.
Cite
@article{arxiv.2309.07354,
title = {Diamond Surface Functionalization via Visible Light-Driven C-H Activation for Nanoscale Quantum Sensing},
author = {Lila V. H. Rodgers and Suong T. Nguyen and James H. Cox and Kalliope Zervas and Zhiyang Yuan and Sorawis Sangtawesin and Alastair Stacey and Cherno Jaye and Conan Weiland and Anton Pershin and Adam Gali and Lars Thomsen and Simon A. Meynell and Lillian B. Hughes and Ania C. Bleszynski Jayich and Xin Gui and Robert J. Cava and Robert R. Knowles and Nathalie P. de Leon},
journal= {arXiv preprint arXiv:2309.07354},
year = {2024}
}