Towards the Generation of Non-Classical Light in 3D Cold-Atom Samples
Quantum scattering of light and entanglement in cold atomic clouds
Many-body non-classical signatures in cold atoms fluorescence
Grant number: | 24/03884-1 |
Support Opportunities: | Research Grants - Visiting Researcher Grant - International |
Start date: | July 01, 2024 |
End date: | December 31, 2024 |
Field of knowledge: | Physical Sciences and Mathematics - Physics - Atomic and Molecular Physics |
Principal Investigator: | Philippe Wilhelm Courteille |
Grantee: | Philippe Wilhelm Courteille |
Visiting researcher: | Mayerlin Nunez Portela |
Visiting researcher institution: | Universidad de los Andes, Colombia, Colombia |
Host Institution: | Instituto de Física de São Carlos (IFSC). Universidade de São Paulo (USP). São Carlos , SP, Brazil |
Associated research grant: | 22/00209-6 - Second generation quantum technologies, AP.TEM |
Abstract
Dense atomic clouds represent an interesting platform for studying collective effects, such as super- and subradiance. On the other hand, the correlated emission and absorption of entangled photons has important applications in quantum technologies, in particular, quantum communication protocols. Generally, twin photons are emitted (or absorbed) by single atoms exploiting an atomic multilevel structure. The question we would like to address in this research project is, theoretically and experimentally, is whether twin photons can be collectively absorbed by two atoms provided they are close enough to interact with each other via dipolar forces. The invited visiting researcher has recognized experience in the production of twin photons, and published research on the consequences of non-classical correlations for two-photons absorption by a single quantum absorber. On the other hand, our experiment in São Carlos is already capable of producing very dense clouds of ultracold strontium atoms. Together with the researcher we will try to find out, whether and in which parameter regime our system should be able demonstrate cooperative absorption of correlated photons, and what could be unambiguous experimental signatures. (AU)
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