English

Long-Lived Mechanically-Detected Molecular Spins for Quantum Sensing

Quantum Physics 2026-03-06 v1 Mesoscale and Nanoscale Physics

Abstract

Quantum sensors based on individual spins provide unprecedented access to local magnetic fields in condensed matter, chemistry, and biology, with solid-state defect spins emerging as the leading platform. However, their molecular-sensing capabilities are limited by confinement to a host lattice, which prevents placement in close proximity to a target molecule. Molecular spins offer an alternative, enabling chemical tunability and flexible positioning relative to the target system. Here we present a nanoscale sensing platform that combines molecular electron spins, ultrasensitive mechanical readout, and Hamiltonian engineering. Using a modified XYXY dipolar decoupling sequence, we suppress electron-electron dipolar interactions across a broad distribution of control fields, extending coherence times to 400 μ\sim 400~\mus in an attoliter-scale droplet containing \sim100 trityl-OX063 radicals. Leveraging this sequence, we demonstrate frequency-selective detection of nanotesla-scale AC fields and perform sensing and spectroscopy of small, local nuclear-spin ensembles. Collectively, these results establish SQUINT (Spin-based QUantum Integrated Nanomechanical Transduction) as a framework for quantum sensing that affords molecular-level control over sensor properties and enables direct integration into complex molecular targets.

Keywords

Cite

@article{arxiv.2603.04708,
  title  = {Long-Lived Mechanically-Detected Molecular Spins for Quantum Sensing},
  author = {Sahand Tabatabaei and Pritam Priyadarsi and Daniel Tay and Namanish Singh and Pardis Sahafi and Andrew Jordan and Raffi Budakian},
  journal= {arXiv preprint arXiv:2603.04708},
  year   = {2026}
}

Comments

Main text: 13 pages, 5 figures, 1 table; supplemental material: 12 pages, 6 figures, 2 tables

R2 v1 2026-07-01T11:04:08.731Z