Coupling Nanostructured Plasmon-Strain Microwave Waveguide to Spin Defects in Hexagonal Boron Nitride for High-Sensitivity Quantum Sensors.

Hussain, Naveed; Vaidya, Sumukh; Dikshit, Saakshi; Esmaeili, Shahriar; Schmalenberg, Paul; Yamano, Hayate; Danno, Katsunori; Sahoo, Biswajit et al. · Adv Mater · 2026

basic_science · Level V

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Abstract

Despite seamless integration of hexagonal boron nitride (hBN) with on-chip devices, the intrinsically low optical quantum yield of spin-active boron vacancy ( <math xmlns="http://www.w3.org/1998/Math/MathML"> <semantics><msubsup><mi>V</mi> <mi>B</mi> <mo>-</mo></msubsup> <annotation>${\mathrm{V}}_{\mathrm{B}}^ - $</annotation></semantics> </math> ) defects remains a significant limitation to the sensitivity of hBN-based quantum sensors. Here, we demonstrate an hBN quantum sensor with enhanced quantum yield and high DC magnetic field sensitivity (η<sub>DC</sub>), achieved by coupling <math xmlns="http://www.w3.org/1998/Math/MathML"> <semantics><msubsup><mi>V</mi> <mi>B</mi> <mo>-</mo></msubsup> <annotation>${\mathrm{V}}_{\mathrm{B}}^ - $</annotation></semantics> </math> defects in hBN with a nanostructured plasmon-strain microwave waveguide architecture.This platform is realized by fabricating arrays of alumina-coated gold nanopillars, or plasmonic nanoresonators (PNRs), onto the constricted region of a microwave-efficient, single-port gold coplanar waveguide. The alumina coating acts as a dielectric barrier that suppresses photoluminescence (PL) quenching, while gold nanopillars enhance local electromagnetic fields and induce strain-driven perturbations of the defect energy levels, causing accelerated photo-emission. This synergistic effect results in a ∼tenfold enhancement in PL and improves optically detected magnetic resonance to -17% for on-PNR regions, exceeding comparable prior works by over an order of magnitude. Consequently, we achieve an η<sub>DC</sub> of 9.4 µT/√Hz, approaching the highest reported values for <math xmlns="http://www.w3.org/1998/Math/MathML"> <semantics><msubsup><mi>V</mi> <mi>B</mi> <mo>-</mo></msubsup> <annotation>${\mathrm{V}}_{\mathrm{B}}^ - $</annotation></semantics> </math> defects. This research establishes a strategy for designing and fabricating highly sensitive quantum sensors that operate at room temperature without requiring extensive optimization of laser or microwave fields.