Ph.D. Student (M/F) – Theoretical Study of Atomic Diffraction Spectroscopy of Two-Dimensional Materials

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Institut de physique et chimie des matériaux de Strasbourg

STRASBOURG • Bas-Rhin

  • FTC PhD student / Offer for thesis
  • 36 months
  • Doctorate

This offer is available in English version

This offer is open to people with a document recognizing their status as a disabled worker.

Offer at a glance

The Unit

Institut de physique et chimie des matériaux de Strasbourg

Contract Type

FTC PhD student / Offer for thesis

Working hHours

Full Time

Workplace

67034 STRASBOURG

Contract Duration

36 months

Date of Hire

01/10/2026

Remuneration

2300 € gross monthly

Apply Application Deadline : 17 August 2026 23:59

Job Description

Thesis Subject

In a recent article published in Physical Review Letters (Phys. Rev. Lett. 135, 263403 (2025)) and highlighted by the journal editors for its exceptional originality (DOI: 10.1103/Physics.18.s166), we developed a novel spectroscopic technique capable of probing atom–surface interactions with unprecedented precision.

In this combined theoretical and experimental study, a beam of fast hydrogen atoms was transmitted through a graphene sheet, a two-dimensional material consisting of a single layer of carbon atoms arranged in a hexagonal lattice. As the atoms traversed this ultrathin membrane—or, more precisely, as their associated matter waves propagated through it—they generated diffraction patterns analogous to the interference patterns produced when light passes through an optical grating. These diffraction images directly reveal the structural quality, crystallinity, and purity of the graphene while simultaneously providing quantitative information about the interaction between hydrogen atoms and the surface.

Interpreting the experimental observations required a detailed comparison with theoretical calculations describing the atom–surface interaction potential. Only state-of-the-art quantum mechanical simulations based on density functional theory (DFT) were able to quantitatively reproduce the experimental results. This excellent agreement demonstrates the remarkable sensitivity of the technique, which is capable of detecting extremely subtle variations in atom–surface interactions. Beyond its fundamental interest, this approach opens a new avenue for probing materials at the atomic scale using neutral atoms rather than charged particles such as electrons, with the major advantage of causing only minimal perturbation to the systems under investigation.

Building on these results, the proposed Ph.D. project aims to develop the theoretical tools required to investigate other two-dimensional insulating materials in close collaboration with the experimental group of Xavier Urbain (Université catholique de Louvain, Belgium) and with Raj Sinha-Roy (Université Claude Bernard Lyon 1) on the theoretical and numerical simulation aspects. The objective is to analyze how both the nature of the material and the choice of incident projectile (beyond hydrogen) influence the diffraction patterns, thereby providing highly accurate information on atom–surface interaction potentials. Particular attention will also be devoted to inelastic processes, which will be investigated using time-dependent density functional theory (TDDFT). This work will pave the way toward a more comprehensive understanding of the interaction mechanisms between fast atoms and two-dimensional materials.

Your Work Environment

The thesis research will be conducted at the Institute of Materials Physics and Chemistry in Strasbourg (IPCMS), within the Q-Dyno team (https://www.ipcms.unistra.fr/equipe/dynamique-quantique-theorique-dyno/) of the Department of Nonlinear Optics (DON). The work will involve developing theoretical models and performing numerical simulations to predict the diffraction properties and interaction mechanisms between fast atoms and two-dimensional materials. The theoretical work will be conducted in close collaboration with the experimental team at the Catholic University of Leuven in Belgium, ensuring a continuous exchange between model predictions and their experimental validation.
The IPCMS laboratory is located on the Cronenbourg campus, which is easily accessible by public transportation (tram and bus) as well as via the Eurométropole's bike paths. The campus offers a pleasant work environment that includes a university cafeteria and sports facilities.

Compensation and benefits

Compensation

2300 € gross monthly

Annual leave and RTT

44 jours

Remote Working practice and compensation

Pratique et indemnisation du TT

Transport

Prise en charge à 75% du coût et forfait mobilité durable jusqu’à 300€

About the offer

Offer reference UMR7504-PAUHER-002
CN Section(s) / Research Area Condensed matter: electronic properties and structures

About the CNRS

The CNRS is a major player in fundamental research on a global scale. The CNRS is the only French organization active in all scientific fields. Its unique position as a multi-specialist allows it to bring together different disciplines to address the most important challenges of the contemporary world, in connection with the actors of change.

CNRS

The research professions

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Ph.D. Student (M/F) – Theoretical Study of Atomic Diffraction Spectroscopy of Two-Dimensional Materials

FTC PhD student / Offer for thesis • 36 months • Doctorate • STRASBOURG

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