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  1. Friedrich-Alexander-Universität
  2. Technische Fakultät

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      • Research Areas
        • Research Area A „Nanostructured functional films“
        • Research Area B „Hierarchical functional materials“
        • Research Area C „Data and Processing“
    Portal Call for 13 PhD Positions
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    Portal Call for 13 PhD Positions
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    Portal Call for 13 PhD Positions
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    Portal Call for 13 PhD Positions
  1. Startseite
  2. Project Descriptions
  3. Research Areas
  4. Research Area A „Nanostructured functional films“
  5. A4: Correlative Microscopy and Functional Analysis of Atomic-Layer-Processed Thin-Film Solar Cells

A4: Correlative Microscopy and Functional Analysis of Atomic-Layer-Processed Thin-Film Solar Cells

Bereichsnavigation: Project Descriptions
  • Research Areas
    • Research Area A "Nanostructured functional films"
      • A1: Correlative 4D-STEM Studies of Functional Thin Films in TEM and SEM
      • A2: Correlative Raman Spectroscopy and TEM Imaging of Defects in 2D Semiconductors
      • A3: Electrochemical Writing and Correlative Characterization of Thin-Film Electrodes
      • A4: Correlative Microscopy and Functional Analysis of Atomic-Layer-Processed Thin-Film Solar Cells
      • A5: Correlative Electron Microscopy and Optical Spectroscopy for Accelerated Organic Solar Cell Design
    • Research Area B "Hierarchical functional materials"
    • Research Area C "Data and Processing"

A4: Correlative Microscopy and Functional Analysis of Atomic-Layer-Processed Thin-Film Solar Cells

Correlative Microscopy and Functional Analysis of Atomic-Layer-Processed Thin-Film Solar Cells

This doctoral project focuses on the development and correlative characterization of ultrathin photovoltaic absorber layers produced by atomic-layer additive manufacturing (ALAM). Building on recent breakthroughs in atomic-precision deposition of chalcogenide semiconductors (e.g., Sb₂S₃), the candidate will investigate how interfacial layers and processing conditions affect microstructure and device performance. Thin-film stacks will be fabricated by atomic layer deposition (ALD) and ALAM and deposited on specialized supports for correlative microscopy using 4D-STEM, SEM, and X-ray scattering. Structural data will be complemented by optical and electrochemical measurements to link nanoscale morphology with carrier dynamics and photovoltaic efficiency. The project integrates microscopy, spectroscopy, and machine learning to uncover structure–process–property relationships in functional thin films. Ultimately, the research will provide insights guiding the rational design of next-generation ultrathin solar cells with optimized interfaces and performance.

Supervisor

JB
Prof. Julien Bachmann (Ph. D.)E-Mail: julien.bachmann@fau.de
  • Cris: cris.fau.de/persons/105101354/
  • Bluesky: bsky.app/profile/ctfm-lab.bsky.social
  • Orcid: orcid.org/0000-0001-6480-6212
  • Linkedin: linkedin.com/in/julien-bachmann-0a11111b7/
  • Googlescholar: scholar.google.de/citations?user=kKRgTZMAAAAJ&hl=en
Friedrich-Alexander-Universität
Erlangen-Nürnberg

Freyeslebenstraße 1
91058 Erlangen
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