Accelerating the development of novel clocks for measuring varying fundamental constants
Lead Research Organisation:
IMPERIAL COLLEGE LONDON
Department Name: Physics
Abstract
QSNET++ will accelerate the completion of (i) a clock based on highly-charged ions currently under construction in Birmingham and (ii) a clock based on ultracold molecules being developed at Imperial College. These two clocks will be part of the QSNET network that aims to measure the stability of fundamental constants in order to probe theories of dark matter and other physics beyond the standard model. The clock at Birmingham is based on highly-charged californium ions and is expected to have world-leading sensitivity to the fine-structure constant. To accelerate the development of this clock, we will build a setup for sympathetic cooling of the highly-charged ions. Singly-charged calcium ions will be cooled to low temperature by laser cooling, and they will then cool down the highly-charged ions through their Coulomb interactions. The clock at Imperial College is based on calcium monofluoride molecules trapped in an optical lattice formed by standing waves of laser light. It is expected to have world-leading sensitivity to the proton-to-electron mass ratio. We will develop an ultra-stable laser system to drive the clock transition in these molecules and then use it to study how accurate the clock can be.
Publications
Barontini G
(2022)
Measuring the stability of fundamental constants with a network of clocks
in EPJ Quantum Technology
Manceau M
(2025)
Demonstration and Frequency Noise Characterization of a 17 µm Quantum Cascade Laser
in Laser & Photonics Reviews
Wang Y
(2025)
Wavelength modulation laser spectroscopy of N 2 O at 17 µ m
in New Journal of Physics
| Description | Through this award, we developed an ultra-stable laser system for a novel type of clock based on the vibrational motion of a molecule. The laser system acts as the oscillator of the clock and is referenced to a Raman transition in the molecule. We stabilized the frequencies of both lasers to an extremely stable optical cavity. This step narrowed the linewidths of the two lasers to about 1 part in 10^14. We measured their frequencies and characterized their stability using an optical frequency comb. This system forms a key element of our novel molecular clock, which will be used for testing fundamental physics and as a new frequency standard in the mid-infrared part of the electromagnetic spectrum. |
| Exploitation Route | The methods developed for stabilizing laser frequencies may be applied in sectors needing precision timing, e.g. aerospace, defence and satellite communication. The development of new standards in the mid-infrared has applications in trace gas sensing which is important for environmental monitoring, breath analysis for healthcare, and process control in manufacturing. |
| Sectors | Aerospace Defence and Marine Digital/Communication/Information Technologies (including Software) Environment Healthcare Manufacturing including Industrial Biotechology |
| Description | An optical frequency comb to support the quantum technology for fundamental physics programme |
| Amount | £298,832 (GBP) |
| Funding ID | ST/X005046/1 |
| Organisation | Science and Technologies Facilities Council (STFC) |
| Sector | Public |
| Country | United Kingdom |
| Start | 11/2022 |
| End | 03/2023 |
| Description | Mid-infrared frequency standards |
| Organisation | Paris 13 University |
| Country | France |
| Sector | Academic/University |
| PI Contribution | Development of frequency reference based on ultracold molecules |
| Collaborator Contribution | Development of mid infrared laser sources and spectroscopic tools |
| Impact | Under development |
| Start Year | 2021 |
| Description | Exhibit (Atoms & Clocks) |
| Form Of Engagement Activity | Participation in an activity, workshop or similar |
| Part Of Official Scheme? | No |
| Geographic Reach | Regional |
| Primary Audience | Public/other audiences |
| Results and Impact | Exhibit on trapped ultracold atoms and the world's best atomic clocks, with demonstrations and direct discussion between scientists and general public. Aim to increase awareness of technological capabilities, applications of ultracold atoms, and importance of atomic clocks. Several hundred attendees from general public with extensive discussion. |
| Year(s) Of Engagement Activity | 2025,2026 |
| URL | https://www.imperial.ac.uk/events/201202/imperial-lates-about-time/ |
