📣 Help Shape the Future of UKRI's Gateway to Research (GtR)

We're improving UKRI's Gateway to Research and are seeking your input! If you would be interested in being interviewed about the improvements we're making and to have your say about how we can make GtR more user-friendly, impactful, and effective for the Research and Innovation community, please email gateway@ukri.org.

Vector light enhanced atomic magnetometry

Lead Research Organisation: University of Glasgow
Department Name: School of Physics and Astronomy

Abstract

Optically pumped magnetometers present an attractive technological alternative to cryogenic, superconducting magnetic field sensors. They make use of the unique sensitivity of, for example, alkali atoms to optical and magnetic fields and operate by generating atomic polarization with polarised light and measuring its response to the magnetic field. This project merges the research fields of quantum magnetometry and structured light: We will develop magnetometers that are pumped with structured vector light and demonstrate the resulting temporal and spatial information enhancement. We will use state-of-the-art technology to design vector light correlated in its spatial and polarisation degrees of freedom, allowing us to imprint spatially varying optical polarisation onto spatially varying atomic spin polarisations.

This project aims to explore and demonstrate the resulting extended functionality compared to conventional optically pumped atomic magnetometers, addressing the following challenges:
the capability to measure 3D vector magnetic field direction in a single-axis geometry, to distinguish between bias and gradient magnetic fields, and to detect time-varying magnetic fields.

Our consortium comprises 5 academic partners, 2 national labs and a deep tech company with expertise in magnetometry, structured light, optical platforms and modelling. The project will strengthen competitiveness and leadership of Quantum Technology in Europe by translating scientific concepts into user-friendly devices with wide-ranging applications in the life, physical
and geosciences, which will be tested in a full field environment against real time operational scientific geomagnetic sensors.

Publications

10 25 50
 
Description Collaboration on theoretical atomic state interferometry 
Organisation Physikalisch-Technische Bundesanstalt
Country Germany 
Sector Academic/University 
PI Contribution Information on experimental realisations of atomic state interferometers and analytical models, towards quantum magnetometry
Collaborator Contribution Development of numerical simulations on atomic state interferometry
Impact Joint publication. Further manuscript(s) under development. PTB have agreed to host one of our students for a month this summer.
Start Year 2024