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Using metal-organic frameworks to confine liquid samples for nanoscale NV-NMR

Applied Physics 2023-01-11 v2

Abstract

Atomic-scale magnetic field sensors based on nitrogen vacancy (NV) defects in diamonds are an exciting platform for nanoscale nuclear magnetic resonance (NMR) spectroscopy. The detection of NMR signals from a few zeptoliters to single molecules or even single nuclear spins has been demonstrated using NV-centers close to the diamond surface. However, fast molecular diffusion of sample molecules in and out of nanoscale detection volumes impedes their detection and limits current experiments to solid-state or highly viscous samples. Here, we show that restricting diffusion by confinement enables nanoscale NMR spectroscopy of liquid samples. Our approach uses metal-organic frameworks (MOF) with angstrom-sized pores on a diamond chip to trap sample molecules near the NV-centers. This enables the detection of NMR signals from a liquid sample, which would not be detectable without confinement. These results set the route for nanoscale liquid-phase NMR with high spectral resolution.

Keywords

Cite

@article{arxiv.2209.05308,
  title  = {Using metal-organic frameworks to confine liquid samples for nanoscale NV-NMR},
  author = {Kristina S. Liu and Xiaoxin Ma and Roberto Rizzato and Anna-Lisa Semrau and Alex Henning and Ian D. Sharp and Roland A. Fischer and Dominik. B. Bucher},
  journal= {arXiv preprint arXiv:2209.05308},
  year   = {2023}
}

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Affiliations: Technical University of Munich, Walter Schottky Institute and Physics Department