antiProtonic Atom X-ray spectroscopy
This project aims to test strong-field quantum electrodynamics using x-ray spectroscopy of antiprotonic atoms, leveraging advanced technologies for precision measurements to uncover new physics.
Projectdetails
Introduction
Numerous experimental observations have shown that the Standard Model is not complete. Precision measurements in quantum systems are one of the privileged frontiers for searching for new physics, as new particles may couple to atoms, provoking tiny changes in atomic structure that can be measured with state-of-the-art methods.
Quantum Electrodynamics (QED)
Such searches are founded on an accurate understanding of quantum electrodynamics (QED), the field theory that describes the interaction between light and charged particles. While QED is well understood for light systems like the hydrogen atom, where agreement between theory and experiment has been achieved up to third-order interactions with the quantum vacuum, for high-Z atoms in the strong Coulomb field regime, the theory remains untested beyond first-order interactions.
This is due to both experimental complications and theoretical uncertainties linked to unknown nuclear properties.
Proposed Approach
I propose a new approach for testing strong-field QED via the x-ray spectroscopy of antiprotonic atoms. In these systems, orders of magnitude higher Coulomb fields can be obtained, acting like a magnifying glass for QED effects that become easier to measure.
Using transitions between Rydberg states, uncertainties from nuclear properties can be avoided, and two orders of magnitude sensitivity can be gained with respect to the best current experiments, making testing strong-field QED finally possible for a broad range of atomic species.
Project Realization
The realization of this project relies on the novel combination of two new technologies:
- Slow antiproton beams at CERN
- Quantum sensing x-ray detectors
The compatibility of these two requires new developments that will lead to a dedicated precision x-ray spectroscopy platform for antiprotonic atoms, with transverse applications beyond QED in nuclear and new physics searches.
Financiële details & Tijdlijn
Financiële details
Subsidiebedrag | € 2.499.613 |
Totale projectbegroting | € 2.499.613 |
Tijdlijn
Startdatum | 1-9-2024 |
Einddatum | 31-8-2029 |
Subsidiejaar | 2024 |
Partners & Locaties
Projectpartners
- CENTRE NATIONAL DE LA RECHERCHE SCIENTIFIQUE CNRSpenvoerder
Land(en)
Vergelijkbare projecten binnen European Research Council
Project | Regeling | Bedrag | Jaar | Actie |
---|---|---|---|---|
Search for physics beyond the standard model with highly charged ionsThe project aims to enhance precision in measuring variations of the fine-structure constant using highly-charged ions and quantum logic spectroscopy to test theories beyond the standard model. | ERC Starting... | € 2.499.833 | 2024 | Details |
High Resolution Laser Spectroscopy of Atomic Hydrogen and DeuteriumThis project aims to enhance precision measurements of atomic hydrogen transitions to improve the Rydberg constant and redefine the SI system based on fundamental constants. | ERC Advanced... | € 2.500.000 | 2024 | Details |
Quantum Controlled X-ray Spectroscopy of Elementary Molecular DynamicsQuantXS aims to revolutionize time-resolved X-ray spectroscopy by developing quantum-controlled methods to monitor molecular photochemistry with unprecedented precision. | ERC Starting... | € 1.401.103 | 2024 | Details |
Quantum Technologies for Axion Dark Matter SearchThe DarkQuantum project aims to detect axions as a solution to dark matter using innovative quantum sensing technologies in particle physics environments, potentially revolutionizing our understanding of the universe. | ERC Synergy ... | € 12.975.660 | 2024 | Details |
Experimental signatures of quantum electrodynamics in the strong field regimeThe EXAFIELD project aims to explore non-perturbative strong-field quantum electrodynamics by using Doppler-boosted laser pulses to collide with ultrashort electron bunches, revealing new physics. | ERC Starting... | € 1.685.085 | 2023 | Details |
Search for physics beyond the standard model with highly charged ions
The project aims to enhance precision in measuring variations of the fine-structure constant using highly-charged ions and quantum logic spectroscopy to test theories beyond the standard model.
High Resolution Laser Spectroscopy of Atomic Hydrogen and Deuterium
This project aims to enhance precision measurements of atomic hydrogen transitions to improve the Rydberg constant and redefine the SI system based on fundamental constants.
Quantum Controlled X-ray Spectroscopy of Elementary Molecular Dynamics
QuantXS aims to revolutionize time-resolved X-ray spectroscopy by developing quantum-controlled methods to monitor molecular photochemistry with unprecedented precision.
Quantum Technologies for Axion Dark Matter Search
The DarkQuantum project aims to detect axions as a solution to dark matter using innovative quantum sensing technologies in particle physics environments, potentially revolutionizing our understanding of the universe.
Experimental signatures of quantum electrodynamics in the strong field regime
The EXAFIELD project aims to explore non-perturbative strong-field quantum electrodynamics by using Doppler-boosted laser pulses to collide with ultrashort electron bunches, revealing new physics.