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Heterogeneous integration of functional oxides by micro-transfert printing (μTP)

LYON, 69
il y a 3 jours

Overview

Heterogeneous integration of functional oxides by micro-transfert printing (μTP)

19/05/2026 Cifre

Heterogeneous integration of functional oxides by micro-transfert printing (μTP)

Context

Micro-transfer printing (μTP) is an emerging micro-assembly technique that enables the transfer of microstructures (semiconductors, optoelectronic components, passive circuits, etc.) from a donor substrate to a receiver substrate with high spatial precision. This technology is particularly well suited for heterogeneous integration, i.e., the assembly of highly dissimilar materials or components onto the same platform (1). One of the key aspects of this technology lies in the preparation of the source substrate, particularly the sacrificial layer that enables the release of the component to be transferred. Functional oxides, crystalline transition-metal oxides exhibiting numerous remarkable properties (ferroelectric, piezoelectric, ferromagnetic, electro-optic, thermoelectric, etc.), enable a wide range of key applications (low-power non-volatile memories, ultra-fast electro-optic modulators, ultra-sensitive sensors, actuators, coolers, generators, etc.). However, the deployment of functional oxide devices on industrial technological platforms remains limited due to several technological barriers. Most devices targeting these applications require, on the one hand, epitaxial thin films (with controlled crystalline orientation, often grown on specific single-crystal substrates that are not compatible with large-scale industrial production), and, on the other hand, micro-/nano-structured thin films (photonic, electronic, thermoelectric circuits, etc.). To overcome these current limitations, one promising approach is the use of epitaxial water-soluble sacrificial oxide layers (2–6), which would enable, through micro-transfer printing (μTP), the release and transfer of micro-/nano-structured functional oxides onto a chosen technological substrate. In this way, advanced devices based on functional oxides could be fabricated. The ambition of this PhD project is to develop the first building blocks required to open up this innovative pathway.

Objectives

  1. Growth by MBE of epitaxial water-soluble sacrificial oxide layers (e.g. SrO)
  2. Epitaxial regrowth of functional oxides with a perovskite structure (e.g. BaTiO₃)
  3. Release and transfer by micro-transfer printing (μTP) onto SOI or SiO₂/Si substrates
  4. Fabrication of micro-devices based on integrated functional oxides

Know-how at INL

  • Epitaxial growth by MBE of SrO layers on SrTiO3(001) (7)
  • Epitaxial growth by MBE of ferroelectric BaTiO3 layers (8)
  • Epitaxial growth by MBE of thermoelectric Sr1-xLaxTiO3 layers (9)
  • Release and transfer by μTP of interband cascade lasers on Si (10)

References

01/10/2026

Cifre

The goal of INL is to encourage world-leading multidisciplinary research in the areas of micro and nanotechnologies and their applications. The pioneering research undertaken at the Institute ranges from materials and technology to devices and systems, thus enabling the emergence of dedicated technologies. The Institute is supported in its work by the Nanolyon Technology Platform.

The application areas cover major economic sectors: semiconductor industry, information technologies, healthcare and wellbeing, energy and the environment. The laboratory is located on two leading research campuses at Lyon Ouest-Ecully and LyonTech-La Doua. It has personnel of 200 people including 121 permanent staff. INL is one of the key laboratories of the “Université de Lyon” research and higher education centre. For further information, please consult our website

Requested/desired skills & motivations

  • Research Master degree (M2 or equivalent) in Physics, Materials Sciences, Nanotechnologies,….
  • Interest for the experimental research, multidisciplinary in materials science
  • Experience in epitaxial growth, structural characterizations, or microfabrication
  • Being proactive & motivated for the collaborative research in clean room environment
  • Good communication skills, especially in English (talks, reports, articles,…)
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Entreprise
Association Bernard Gregory
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