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Orbitronics: time scales involved in orbital to charge conversion processes


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-26-0762  

Direction

DRF

Thesis topic details

Category

Condensed Matter Physics, chemistry, nanosciences

Thesis topics

Orbitronics: time scales involved in orbital to charge conversion processes

Contract

Thèse

Job description

Orbitronics is an emerging research field spanning condensed matter physics and materials science to electrical engineering that focuses on the study and manipulation of the electron's orbital angular momentum (OAM). The key idea is to use the OAM of electrons as a means to store, transfer, and process information, similar to how spintronics leverages the electron's spin. Importantly, OAM can be generated by a wide range of material systems and with theoretically much higher efficiency than its spin counterpart, using cheap, environmentally friendly and abundant lightweight elements. Orbitronics thus has both a fundamental interest and technological perspectives that provide an innovative and multidisciplinary framework.
Here, we are targeting oxide interfaces as a rich playground to explore Rashba physics in 2D electron gases (2DEG) and in particular its ability to confert spin or orbit to charge via the Orbital Inverse Rashba Edelstein effect. The LaAlO3/SrTiO3 interface provides an ideal playground to explore this physics and in particular parameters such as crystal orientation and the (LaAlO3) tunnel barrier. These properties will be studied at low-temperature as angular momentum is injected in the dc regime by the spin Seebeck effect. The study will be extended to the ultra-fast regime of the orbital to charge conversion using ultra-fast laser-induced demagnetization of a magnetic layer deposited on top and the measurement of the resulting THz emission. Here, we want to identify the parameters responsible for the decrease in efficiency at the picosecond timescale noted in the first THz emission measurements. Our final aim is to measure the timescales associated to hot electrons and spin/orbital diffusion in this system, which will be the main activity of the PhD student.

University / doctoral school

Physique en Île-de-France (EDPIF)
Paris-Saclay

Thesis topic location

Site

Saclay

Requester

Position start date

01/09/2026

Person to be contacted by the applicant

VIRET Michel michel.viret@cea.fr
CEA
DRF/IRAMIS/SPEC/LNO
CEA-Saclay
Bât 772 Orme des Merisiers
F-91191 Gif-Sur-Yvette
01 69 08 71 60

Tutor / Responsible thesis director

VIRET Michel michel.viret@cea.fr
CEA
DRF/IRAMIS/SPEC/LNO
CEA-Saclay
Bât 772 Orme des Merisiers
F-91191 Gif-Sur-Yvette
01 69 08 71 60

En savoir plus

https://iramis-i.cea.fr/spec/pisp/michel-viret/
https://iramis-i.cea.fr/spec/lno/