A single spin in hexagonal boron nitride for vectorial quantum magnetometry
Abstract
Abstract Quantum sensing based on solid-state spin defects provides a uniquely versatile platform for nanoscale magnetometry under diverse environmental conditions. Operation of most sensors used to-date is based on projective measurement along a single axis combined with computational extrapolation. Here, we show that an individually addressable carbon-related spin defect in hexagonal boron nitride is a multi-axis nanoscale sensor with large dynamic range. For this spin-1 system, we demonstrate how its spin-dependent photodynamics give rise to three optically detected spin resonances that show up to 90% contrast and are not quenched under off-axis magnetic field exceeding 100 mT, enabling $$\mu \,{{\rm{T}}}/{{{\rm{Hz}}}^{-1/2}}$$ μ T / Hz − 1 / 2 sensitivity. Finally, we show how this system can be used to unambiguously determine the three components of a target magnetic field via the use of two bias fields. Alongside these features, the room-temperature operation and the nanometer-scale proximity enabled by the van der Waals host material further consolidate this system as a promising quantum sensing platform.
Article Details
Authors (14)
Carmem M. Gilardoni
Simone Eizagirre Barker
Catherine L. Curtin
Stephanie A. Fraser
Oliver. F. J. Powell
Dillon K. Lewis
Xiaoxi Deng
Andrew J. Ramsay
Sonachand Adhikari
Chi Li
Shenzhen Key Laboratory of Advanced Energy Storage, Department of Mechanical and Energy Engineering
Igor Aharonovich
Hark Hoe Tan
Mete Atatüre
Hannah L. Stern