Nonlinear magnetization dynamics triggered by surface acoustic waves

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-26-0881  

Direction

DRF

Thesis topic details

Category

Technological challenges

Thesis topics

Nonlinear magnetization dynamics triggered by surface acoustic waves

Contract

Thèse

Job description

RF signals are everywhere in today’s connected society. On one side, surface acoustic wave (SAW) devices built on piezo-electric substrates are widely used to distinguish between frequencies. While quite energy efficient, SAW devices mostly operate in narrowband applications and perform linear, frequency-conserving operations. On the other side, magnonic devices rely on the specific properties of spin-waves (SW) in ferromagnetic materials and are highly tunable and nonlinear, but suffer from significant insertion losses. Fortunately, magneto-elastic and magneto-rotation effects can couple the dynamics of magnetization in a thin ferromagnetic film deposited on top of a piezo-electric substrate to the one of its lattice. For instance, we have recently demonstrated that it is possible to excite the linear magnetization dynamics of a ferromagnetic CoFeB nanodisk thanks to SAW electrically actuated in the underlying LiNbO3 substrate [1].

The objective of this thesis will be to demonstrate that this can also be achieved in a nonlinear regime. For this, we will magnetize the ferromagnetic disk in the plane. In this configuration, the precession of magnetization is elliptical, which allows to excite parametrically spin-wave eigenmodes of the disk using an RF magnetic field parallel to the disk’s magnetization with a frequency close to twice the eigenfrequencies [2]. The originality here will be to replace the RF excitation field usually produced by an inductive antenna by the effective tickle and rolling fields associated to the magneto-elastic and magneto-rotation terms active when a SAW is excited in the substrate. These measurements will be performed on samples fabricated in collaboration with another laboratory (C2N) and thanks to a highly sensitive magnetic resonance force microscopy technique developed at SPEC. Micromagnetic simulations using Mumax3 will also be conducted to understand the SAW excitation threshold to be overcome to excite parametric modes in the disk.

This thesis will take place in the context of the recently funded project NELSON (« Non-Linear Surface acoustic wave platform enabled by spin wave hybridizatiON ») by the French ANR.

[1] R. Lopes Seeger et al., Phys. Rev. Lett. 134, 176704 (2025)
[2] T. Srivastava et al., Phys. Rev. Appl. 19, 064078 (2023)

University / doctoral school


Thesis topic location

Site

Saclay

Requester

Position start date

01/11/2026

Person to be contacted by the applicant

de Loubens Grégoire gregoire.deloubens@cea.fr
CEA
DRF/IRAMIS/SPEC/LNO
CEA Paris-Saclay
Bât 772 Orme des Merisiers
F-91191 Gif-Sur-Yvette
01 69 08 71 60

Tutor / Responsible thesis director

de Loubens Grégoire gregoire.deloubens@cea.fr
CEA
DRF/IRAMIS/SPEC/LNO
CEA Paris-Saclay
Bât 772 Orme des Merisiers
F-91191 Gif-Sur-Yvette
01 69 08 71 60

En savoir plus


https://iramis.cea.fr/spec/lno/