All-Oxide Transparent Photovoltaics
| ABG-140139 | Sujet de Thèse | |
| 02/09/2026 | Contrat doctoral |
- Matériaux
- Chimie
- Physique
Description du sujet
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.
Prise de fonction :
Nature du financement
Précisions sur le financement
Présentation établissement et labo d'accueil
Research Environment
This PhD position offers an outstanding interdisciplinary research environment 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.
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Profil du candidat
Candidate Profile
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.
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