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Development of photo-printed interferometric biosensors on multi-core optical fibers for molecular diagn


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-26-0078  

Direction

DRF

Thesis topic details

Category

Condensed Matter Physics, chemistry, nanosciences

Thesis topics

Development of photo-printed interferometric biosensors on multi-core optical fibers for molecular diagnostics

Contract

Thèse

Job description

Optical fibers are minimally invasive devices commonly used in medicine for in vivo tissue imaging by endoscopy. However, at present, they only provide images and no molecular information about the tissues observed. The proposed thesis is part of a project aimed at giving optical fibers the ability to perform molecular recognition in order to develop innovative biosensors capable of performing real-time, remote, in situ, and multiplexed molecular analysis. Such a tool could lead to significant advances in the medical field, particularly in the study of brain pathologies, where knowledge of the tumor environment, which is difficult to access using conventional biopsies, is essential.
The proposed approach is based on 2-photon polymerization printing of interferometric structures at the end of each core of a multifiber assembly. The detection principle is based on the interference occurring in these structures and their modification by the adsorption of biological molecules. Each fiber in the assembly will act as an individual sensor, and measuring the intensity of the light reflected at the functionalized end will provide information about the biological interactions occurring on that surface. By modeling the interference phenomenon, we determined parameters to optimize the shape and sensitivity of interferometric structures (PTC InSiBio 2024-2025). These results enabled the printing and characterization of the sensitivity of interferometric structures on single-core fibers. The objectives of the thesis are to continue this optical characterization on new samples and to develop original photochemical functionalization methods in order to graft several biological probes onto the surface of the fiber assemblies. This multi-functionalization will enable multiplexed detection, which is essential for future medical applications. Depending on the progress of the thesis, the biosensors will be validated through the detection of biological targets in increasingly complex environments, up to and including a brain tissue model.

University / doctoral school

Ecole Doctorale de Physique de Grenoble (EdPHYS)
Université Grenoble Alpes

Thesis topic location

Site

Grenoble

Requester

Position start date

01/11/2026

Person to be contacted by the applicant

BIDAL Elodie elodie.bidal@univ-grenoble-alpes.fr
Université Grenoble Alpes
DRF/IRIG/SyMMES/CREAB
IRIG, SyMMES, CREAB
CEA Grenoble
17 rue des Martyrs
38054 Grenoble cedex 9
+33 4 38 78 32 74

Tutor / Responsible thesis director

BIDAL Elodie elodie.bidal@univ-grenoble-alpes.fr
Université Grenoble Alpes
DRF/IRIG/SyMMES/CREAB
IRIG, SyMMES, CREAB
CEA Grenoble
17 rue des Martyrs
38054 Grenoble cedex 9
+33 4 38 78 32 74

En savoir plus


https://www.symmes.fr/Pages/CREAB/Presentation.aspx