Aix-Marseille University

Ph.D. Thesis (M/F): Fabrication, Characterization and Frequency-Domain Learning in Spintronic RF Neural Networks

접수중2026.06.08~2026.06.27

채용 정보

  • 접수 기간

    2026.06.08 00:00~2026.06.27 23:59

  • 접수 방법

    홈페이지지원더보기

  • 채용 구분

    경력 무관

  • 고용 형태

    계약직

  • 지원 자격

    박사

  • 모집 전공

    물리・과학더보기

  • 기관 유형

    대학교

  • 근무 지역

    해외(프랑스)더보기

  • 연봉 정보

The work will be carried out at the Albert Fert Laboratory, in the "Neuromorphic Physics" team exploring the use of nanodevices and their multiple functionalities for bio-inspired computing. The team includes two permanent CNRS researchers, two Thales researchers, 4 post-docs, and 4 PhD students.

This Ph.D. project aims to develop spintronic radio-frequency nanodevices as building blocks for hardware neural networks operating and learning in the frequency domain. The research will focus on the fabrication, electrical and RF characterization, and algorithmic exploration of spintronic nanodevices whose nonlinear dynamics, frequency response, and device-to-device variability can be used for neuromorphic computing.
The candidate will contribute to the nanofabrication of spintronic devices, their experimental characterization under RF excitation, and the development of dedicated learning algorithms adapted to spintronic RF neural networks. A central objective will be to encode, process, and train information directly in the frequency space, taking advantage of the physical properties of the devices. The project will combine experimental spintronics, RF measurements, and machine-learning approaches to demonstrate learning capabilities in hardware-compatible spintronic systems.

Activities

• Nanofabrication of spintronic RF nanodevices using cleanroom processes
• Optimization of device geometry and materials for frequency-domain neuromorphic operation
• Electrical and RF characterization of spintronic nanodevices
• Measurement of nonlinear, resonant, and frequency-dependent responses under RF excitation
• Design of experimental protocols for frequency-domain encoding, processing, and learning
• Development of learning algorithms adapted to RF spintronic neural networks
• Implementation and validation of hardware-compatible training strategies
• Analysis of the impact of device variability, noise, and imperfections on learning performance
• Collaboration with a multidisciplinary team combining spintronics, nanofabrication, RF measurements, and neuromorphic computing

Required expertise

Strong background in experimental physics, nanophysics, or spintronics
• Experience or strong interest in nanofabrication and cleanroom processes
• Experience in electrical and/or RF measurements of nanodevices
• Expertise in Python and/or machine-learning algorithms
• Interest in hardware neural networks, neuromorphic computing, and physics-based learning
• Ability to work at the interface between experiments, device physics, and algorithms

근무 예정지

대표해외(프랑스) : France, Laboratoire Albert Fert, PALAISEAU

기관 정보

Aix-Marseille University

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  • 기관유형

    대학교(해외)

  • 대표전화

    +33 4 91 39 65 00

  • 대표주소

    Jardin du Pharo, 58 Boulevard Charles Livon, 13007 Marseille

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관련 키워드

PhysicsSolid state physicsSurface physics
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