Heterostructure Films of SiO2 and HfO2 for High-Power Laser Optics Prepared by Plasma-Enhanced Atomic Layer Deposition

Author:

Alam Shawon12,Paul Pallabi12ORCID,Beladiya Vivek12ORCID,Schmitt Paul12,Stenzel Olaf2,Trost Marcus2,Wilbrandt Steffen2,Mühlig Christian2,Schröder Sven2,Matthäus Gabor1,Nolte Stefan12ORCID,Riese Sebastian3,Otto Felix4ORCID,Fritz Torsten4ORCID,Gottwald Alexander5ORCID,Szeghalmi Adriana12ORCID

Affiliation:

1. Institute of Applied Physics, Abbe Center of Photonics, Friedrich Schiller University Jena, Albert-Einstein-Str. 15, 07745 Jena, Germany

2. Fraunhofer Institute for Applied Optics and Precision Engineering, Albert-Einstein-Str. 7, 07745 Jena, Germany

3. Layertec GmbH, Ernst-Abbe-Weg 1, 99441 Mellingen, Germany

4. Institute of Solid State Physics, Faculty of Physics and Astronomy, Friedrich Schiller University Jena, Helmholtzweg 5, 07743 Jena, Germany

5. Physikalisch-Technische Bundesanstalt, Abbestraße 2-12, 10587 Berlin, Germany

Abstract

Absorption losses and laser-induced damage threshold (LIDT) are considered to be the major constraints for development of optical coatings for high-power laser optics. Such coatings require paramount properties, such as low losses due to optical absorption, high mechanical stability, and enhanced damage resistance, to withstand high-intensity laser pulses. In this work, heterostructures were developed by sub-nanometer thin films of SiO2 and HfO2 using the plasma-enhanced atomic layer deposition (PEALD) technique. Thin-film characterization techniques, such as spectroscopic ellipsometry, spectrophotometry, substrate curvature measurements, X-ray reflectivity, and Fourier transform infrared spectroscopy, were employed for extracting optical constants, residual stress, layer formation, and functional groups present in the heterostructures, respectively. These heterostructures demonstrate tunable refractive index, bandgap, and improved optical losses and LIDT properties. The films were incorporated into antireflection coatings (multilayer stacks and graded-index coatings) and the LIDT was determined at 355 nm wavelength by the R-on-1 method. Optical absorptions at the reported wavelengths were characterized using photothermal common-path interferometry and laser-induced deflection techniques.

Funder

Deutsche Forschungsgemeinschaft

Fraunhofer Society Attract

Publisher

MDPI AG

Subject

Materials Chemistry,Surfaces, Coatings and Films,Surfaces and Interfaces

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