CF202645904
Enhanced Quantum-Radiofrequency Sensor
D-67
Doctorate Full Doctorate
Disciplines
Electrical Engineering
Laboratory
Laboratoire Antennes, Propagation, Couplage Inductif Département Systèmes (LETI)
Host institution
UNIVERSITE GRENOBLE ALPES
Doctoral school
Electronics, Electrotechnics, Automatics, Signal treatment - ED 220

Description

Through the Carnot SpectroRF exploratory project, CEA Leti is involved in radio-frequency sensor systems based on atomic optical spectroscopy. The idea behind the development is that these systems offer exceptional detection performance. These include high sensitivity´ (~nV.cm-1.Hz-0.5), very wide bandwidths (MHz- THz), wavelength-independent size (~cm) and no coupling with the environment. These advantages surpass the capabilities of conventional antenna-based receivers for RF signal detection. The aim of this thesis is to investigate a hybrid approach to the reception of radio-frequency signals, combining atomic spectroscopy measurement based on Rydberg atoms with the design of a close environment based on metal and/or charged material for shaping and local amplification of the field, whether through the use of resonant or non-resonant structures, or focusing structures. In this work, the main scientific question is to determine the opportunities and limits of this type of approach, by analytically formulating the field limits that can be imposed on Rydberg atoms, whether in absolute value, frequency or space, for a given structure. The analytical approach will be complemented by EM simulations to design and model the structure associated with the optical atomic spectroscopy bench. Final characterization will be based on measurements in a controlled electromagnetic environment (anechoic chamber). The results obtained will enable a model-measurement comparison to be made. Analytical modelling and the resulting theoretical limits will give rise to publications on subjects that have not yet been investigated in the state of the art. The structures developed as part of this thesis may be the subject of patents directly exploitable by CEA.

Funded offer

Funding type
CEA

Dates

Application deadline 31/10/26

Duration36 months

Start date01/09/26

Creation date26/01/26

Languages

Level of french requiredNone

Level of English requiredNone

Opportunity to make his thesis in English

Miscellaneous

Annual tuition fee391 € / year

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