PhD Position in All-Oxide Transparent Photovoltaics

Université de Caen Normandie

France

Sur place

EUR 18 000 - 24 000

Plein temps

14 jours+
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Résumé du poste

Université de Caen Normandie offers a fully funded PhD position in transparent photovoltaics, functional oxides, and condensed matter physics, hosted at CRISMAT in Caen, France.

The project will design an epitaxial oxide thin-film platform to enable visible-light absorption with intrinsic polarity and shift currents, pursuing a new generation of transparent energy-harvesting devices.

Qualifications

  • Master’s degree in Physics, Chemistry or closely related discipline.
  • Solid background in solid-state physics, thin-film deposition, oxide materials or optical spectroscopy.
  • Interest in interdisciplinary research across materials synthesis, characterization and devices.

Responsabilités

  • Conceive, grow and study epitaxial oxide thin films for transparent PV.
  • Investigate polarity and shift currents for charge separation.
  • Collaborate within CRISMAT Caen; contribute to device concepts and training.

Connaissances

Interdisciplinary research
Synthesis
Characterization
Device concepts

Formation

Master's degree in Physics
Master's degree in Chemistry

Outils

Thin-film deposition
Optical spectroscopy
Oxide materials

Description du poste

Organisation/Company Université de Caen Normandie Research Field Chemistry Researcher Profile First Stage Researcher (R1) Positions PhD Positions Application Deadline 12 Oct 2026 - 23:59 (UTC) Country France Type of Contract Temporary Job Status Full-time Offer Starting Date 1 Oct 2026 Is the job funded through the EU Research Framework Programme? Not funded by a EU programme Is the Job related to staff position within a Research Infrastructure? No

Offer Description

We are offering a fully funded PhD position in the field of transparent photovoltaics, functional oxides, and condensed matter physics. The project will explore a new route toward transparent solar energy conversion through the design of all-oxide p-i-n heterostructures that exploit the Bulk Photovoltaic Effect rather than conventional interface-driven photovoltaic mechanisms.
Transparent photovoltaics represent an important frontier in building-integrated energy harvesting, with the long-term goal of creating window-like devices that remain transparent to visible light while also generating electricity. Conventional wide-bandgap semiconductor approaches, however, are limited by weak absorption in the visible range and by the classical Shockley-Queisser efficiency limit. This PhD project aims to investigate an alternative design concept based on oxide materials with broken inversion symmetry and quantum-geometric electronic properties.

Project Description
The project will focus on the conception, growth, and study of a fully epitaxial and chemically stable oxide thin-film platform for transparent photovoltaic applications. The central idea is to design a transparent photovoltaic architecture in which light-induced charge separation emerges from intrinsic material properties rather than from standard semiconductor junction physics. In particular, the work will investigate how structural polarity in non-centrosymmetric oxides can generate real-space shift currents and enable ultrafast charge separation.
The envisioned device architecture will include two key components. First, the project will use correlated metallic oxide electrodes as the p- and n-type contact layers. These materials are expected to combine strong electrical conductivity with visible transparency by shifting the plasma frequency toward the near-infrared through electronic correlation effects. Second, the active intrinsic layer will consist of a polar transition-metal oxide absorber engineered to break inversion symmetry. The project will explore strategies based on epitaxial strain and digital sub-lattice design to induce improper ferroelectricity and maximize the visible-light bulk photovoltaic response.
More broadly, the PhD will address how electronic correlations, structural symmetry breaking, and oxide heterostructure design can be combined to create a new generation of transparent and multifunctional photovoltaic devices.

Research Environment
This PhD position offers an outstanding interdisciplinary research environment at CRISMAT in Caen, France, connecting expertise in functional oxide thin-film synthesis, condensed matter physics, and optoelectronic device engineering. The project is designed to bridge advanced materials growth and characterization with device-oriented research, providing strong training at the interface of fundamental physics and energy-related applications.

Requirements

Research Field Chemistry Education Level Master Degree or equivalent

Research Field Physics Education Level Master Degree or equivalent

Skills/Qualifications

We are seeking a highly motivated candidate holding a Master’s degree (or equivalent) in Physics, Materials Science, Solid-State Chemistry, or a closely related discipline.
Applicants with a solid background in solid-state physics, thin-film deposition, oxide materials, or optical spectroscopy are particularly encouraged to apply. The ideal candidate should have a strong interest in interdisciplinary research and be eager to work across materials synthesis, physical characterization, and device concepts.

As the laboratory is located in a restricted-access area, a request must be submitted to the security officer and approved before you can take up your post.

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