Fluorescence photoswitching for excitonic gate

Thesis topic details

General information

Organisation

The French Alternative Energies and Atomic Energy Commission (CEA) is a key player in research, development and innovation in four main areas :
• defence and security,
• nuclear energy (fission and fusion),
• technological research for industry,
• fundamental research in the physical sciences and life sciences.

Drawing on its widely acknowledged expertise, and thanks to its 16000 technicians, engineers, researchers and staff, the CEA actively participates in collaborative projects with a large number of academic and industrial partners.

The CEA is established in ten centers spread throughout France
  

Reference

SL-DRF-25-0356  

Direction

DRF

Thesis topic details

Category

Condensed Matter Physics, chemistry, nanosciences

Thesis topics

Fluorescence photoswitching for excitonic gate

Contract

Thèse

Job description

Förster Resonance Energy Transfer (FRET) enables the exciton diffusion between molecules through a characteristic distance of 1 to 10 nm. The association of multiple fluorophores represents a solution to facilitate exciton diffusion over a longer range, taking profit of homo-FRET and hetero-FRET phenomena. FRET is a fundamental aspect in the development of photo-switchable luminescent devices. At the molecular level, the design of photo-switchable systems relies on the association of two components: a luminescent material and a photochromic compound. The formation of nano-objects with similar molecules leads to intriguing responses in fluorescence and photochromic behavior due to multiple energy transfers. However, these systems are poorly used in molecular logic, and they switch between bright and dark states. Considering an emissive acceptor (a second bright state) would allow exciton diffusion over longer distances and enable its detection.

The FLUOGATE project objective is the preparation and characterization of photoswitchable luminescent molecular nanostructures that behaves as an excitonic gate. The initial step is the preparation and study of 2D photoswitchable monolayers with controlled organization. The combination of optical and local probe measurements will permit the characterization of fluorescence photoswitching following the structural change at the single molecule scale and determination of the quenching radius. Then, the preparation and study of 3D architectures will be undertaken. The strategy entails the successive deposition of various dyes. Layers of the donor fluorophore will be deposited just above the substrate, followed by layers of the photochromic compound and finally layers of the acceptor fluorophore. The ultimate goal will consist in exploring the replacement of the photochromic layer by a photochromic nanoparticle in a polymer matrix.

University / doctoral school


Thesis topic location

Site

Saclay

Requester

Position start date

01/10/2025

Person to be contacted by the applicant

Fabre Nicolas nicolas.fabre@cea.fr
CEA
DRF/IRAMIS/SPEC/LEPO
Bât 774 P142
Service de Physique de l'Etat Condensé
L'orme des merisiers
91191 Cedex, Gif-sur-Yvette
+33 1 69 08 47 20

Tutor / Responsible thesis director

FIORINI Celine celine.fiorini@cea.fr
CEA
DRF/IRAMIS/SPEC/LEPO
DSM/IRAMIS/SPEC/LEPO
Bât. 462-466
CEA/Saclay
91191 Gif Sur Yvette
0169086238

En savoir plus

https://iramis.cea.fr/spec/lepo/annuaire/?uidc=M0ixNLBINjMEAA
https://iramis.cea.fr/spec/lepo/