<?xml version="1.0" encoding="UTF-8"?><ns2:project xmlns:ns1="http://gtr.rcuk.ac.uk/gtr/api" xmlns:ns2="http://gtr.rcuk.ac.uk/gtr/api/project" xmlns:ns3="http://gtr.rcuk.ac.uk/gtr/api/fund" xmlns:ns4="http://gtr.rcuk.ac.uk/gtr/api/person" xmlns:ns5="http://gtr.rcuk.ac.uk/gtr/api/project/outcome" xmlns:ns6="http://gtr.rcuk.ac.uk/gtr/api/organisation" ns1:created="2026-07-08T08:44:08Z" ns1:href="http://gtr.ukri.org/gtr/api/projects/DACAE57E-B3E7-4B97-9A66-2564055DD00B" ns1:id="DACAE57E-B3E7-4B97-9A66-2564055DD00B"><ns1:links><ns1:link ns1:href="http://gtr.ukri.org/gtr/api/persons/168E487D-F280-4C7B-AEB2-297903911BDC" ns1:rel="PM_PER"/><ns1:link ns1:href="http://gtr.ukri.org/gtr/api/organisations/D6A51BEC-67E9-4D66-A1EF-4A2CA1D21A21" ns1:rel="LEAD_ORG"/><ns1:link ns1:href="http://gtr.ukri.org/gtr/api/organisations/E8C66154-79EA-4DA0-B6CC-107B17DE6851" ns1:rel="PARTICIPANT_ORG"/><ns1:link ns1:href="http://gtr.ukri.org/gtr/api/organisations/D6A51BEC-67E9-4D66-A1EF-4A2CA1D21A21" ns1:rel="PARTICIPANT_ORG"/><ns1:link ns1:href="http://gtr.ukri.org/gtr/api/organisations/8F803676-67E2-43D1-A0E1-16189442A00D" ns1:rel="PARTICIPANT_ORG"/><ns1:link ns1:end="2024-03-31T00:00:00Z" ns1:href="http://gtr.ukri.org/gtr/api/funds/424711C2-47EE-4424-97BD-99D8DBE8FD12" ns1:rel="FUND" ns1:start="2022-09-30T23:00:00Z"/></ns1:links><ns2:identifiers><ns2:identifier ns2:type="RCUK">10031467</ns2:identifier></ns2:identifiers><ns2:title>QGyro</ns2:title><ns2:status>Closed</ns2:status><ns2:grantCategory>Collaborative R&amp;D</ns2:grantCategory><ns2:leadFunder>ISCF</ns2:leadFunder><ns2:abstractText>Accurate inertial measurement units (IMUs) are critical for autonomous navigation in where access to Global Navigation Satellite System (GNSS) is denied/unavailable/unreliable. This is particularly relevant to defence/security applications (e.g. cruise missiles) or civilian applications such as remote search and rescue situations.

The QGyro project will develop a navigation-grade based on an atomic spin gyroscope and evaluate the miniaturisation potential of the technology.

The 18-month project builds on outputs of several quantum projects to create a pathway to developing the commercial atomic spin gyroscope based on co-magnetometry.</ns2:abstractText></ns2:project>