SWIR anti-reflective nanostructures on nonlinear crystals by direct UV femtosecond laser printing

Author:

Syubaev Sergey1ORCID,Modin Evgeny2ORCID,Gurbatov Stanislav1ORCID,Cherepakhin Artem1ORCID,Dostovalov Alexandr3ORCID,Tarasova Aleksandra45ORCID,Krinitsin Pavel45ORCID,Yelisseyev Alexander45ORCID,Isaenko Ludmila45ORCID,Kuchmizhak Aleksandr16ORCID

Affiliation:

1. Institute of Automation and Control Processes, Far Eastern Branch, Russian Academy of Science 1 , Vladivostok 690041, Russia

2. CIC NanoGUNE BRTA 2 , Avda Tolosa 76, Donostia-San Sebastian 20018, Spain

3. Institute of Automation and Electrometry of the SB RAS 3 , 1 Acad. Koptyug Ave., Novosibirsk 630090, Russia

4. Laboratory of Crystal Growth, V.S. Sobolev Institute of Geology and Mineralogy SB RAS 4 , Novosibirsk 630090, Russia

5. Laboratory of Functional Materials, Novosibirsk State University 5 , Novosibirsk 630090, Russia

6. Pacific Quantum Center, Far Eastern Federal University 6 , 8 Sukhanova Str., Vladivostok, Russia

Abstract

Nonlinear infrared (IR) crystals for radiation conversion are of paramount importance for realization of advanced laser spectrometers for medical diagnostics, environmental monitoring, and advanced sensing. However, performance of such crystals suffers from substantial surface reflectivity coming from rather high (over 2.5) refractive index of the key nonlinear materials used. Here, based on the example of promising BaGa4Se7 nonlinear crystal, we attested direct surface patterning with ultraviolet (257 nm) femtosecond laser pulses used to engrave anti-reflective microstructures (ARMs) directly on both output sides of the crystal. Imprinted surface nanotrenches arranged into a fish-net morphology with a periodicity down to 500 nm was found to increase transmittance of the crystals from 65% to 84% within a practically relevant shortwave IR spectral range. Formation of the ARMs with an optimized geometry is expected to weakly reduce the laser damage threshold of a pristine crystal material as it was also evidenced from supporting full-wave simulations and tests.

Funder

Russian Science Foundation

Publisher

AIP Publishing

Subject

Physics and Astronomy (miscellaneous)

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