H2020Individual fellowship2017–2019

EXTREMELIGHT · EXTREME ENVIRONMENT RESISTANT NANOPHOTONICS

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2017-05-02 → 2019-05-01
EU contribution
€180,277
Participants
1
Scheme
MSCA-IF-EF-ST

Lines connect the coordinator with its partners.

Results in brief

EXTREME ENVIRONMENT RESISTANT NANOPHOTONICS

Nanophotonic extreme environment sensors are expected to lead to revolutionary advancements in aerospace, nuclear, wellbore exploration and environmental bio-chemical sciences. Extreme environments are those where the physico-chemical conditions render standard materials completely unusable; including strongly ionizing radiation, high erosion, high corrosion, or temperatures beyond 1600°C in aircraft and aerospace applications. Recently, yttrium aluminum garnet (YAG) crystals have been identified as a harsh environment resistant optical material thanks to its unique combination of outstanding optical properties and high melting temperature (1970°C), high chemical inertness and hardness. However, micro or nanostructuring of YAG components is typically impossible due to its ability to withstand plasma corrosion in etching chambers and also fast fracture under high stress machining or milling processes. The central question that this project aims to solve is if it is possible to fabricate three-dimensional air-dielectric nanostructures inside YAG crystals so as to design functional nanophotonic circuits inside single crystals for future extreme-environment high-performance sensors. The EXTREMELIGHT project combines a unique YAG-nanostructuring breakthrough technology developed by the experienced researcher Dr. Ródenas, with the recognized expertise of the academic Host (the FAST group, directed by Dr. Osellame at the IFN-CNR) in lab-on-chip photonics, and of the Industrial Partner in high-performance integrated spectrometers, for exploring the development of a first proof-of-concept YAG nanophotonics technology which could lead to a novel generation of high-performance integrated nanophotonics capable of withstanding the most extreme environments.

Data: CORDIS, © European Union

Project objective

Nanophotonic extreme environment sensors are expected to lead to revolutionary advancements in aerospace, nuclear, wellbore exploration and environmental bio-chemical sciences. Extreme environments are those where the physico-chemical conditions render standard materials completely unusable; including strongly ionizing radiation, high erosion, high corrosion, or temperatures beyond 1600°C in aircraft and aerospace applications. Recently, yttrium aluminum garnet (YAG) crystals have been identified as harsh environment resistant optical material thanks to its unique combination of outstanding optical properties and high melting temperature (1970°C), chemical inertness and hardness. It´s use for developing extreme environment nanophotonic on-chip instruments is therefore of high interest. However, micro/nanostructuring YAG crystalline components is currently impossible due to its capability to withstand corrosion in plasma etching chambers, its hardness, and its fracturing under high micro-stress loading machining or milling industrial processes. The central question that this project aims to solve is:Is it possible to fabricate three-dimensional (3D) nanophotonic circuits inside YAG crystals so as to open a research road towards future monolithic nanophotonic sensors for industrial application in extreme-environments?By combining a unique method for 3D laser nanostructuring YAG crystals recently developed by the experienced researcher, with the recognized expertise of the academic Host in lab-on-chip photonics and ultra-short pulse laser spectroscopy, and the expertise of the Industrial Partner in high-performance integrated spectrometers, the EXTREMELIGHT project aims at demonstrating in a unique training-based multidisciplinary 2-year work-plan, the first proof-of-concept YAG nanophotonics technology, which could lead to a novel generation of high-performance integrated optical sensors capable of withstanding the most extreme environments.

Original text from CORDIS.

Participants

  • CONSIGLIO NAZIONALE DELLE RICERCHE · RomaCoordinatorItaly

Links

Data: CORDIS, © European Union