Concept of Inverted Refractive-Index-Contrast Grating Mirror and Exemplary Fabrication by 3D Microprinting

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Hauptverfasser: Pruszyńska-Karbownik, Emilia, Jandura, Daniel, Dems, Maciej, Zinkiewicz, Łukasz, Broda, Artur, Gȩbski, Marcin, Muszalski, Jan, Pudis, Dusan, Suffczyński, Jan, Czyszanowski, Tomasz
Format: Preprint
Veröffentlicht: 2023
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author Pruszyńska-Karbownik, Emilia
Jandura, Daniel
Dems, Maciej
Zinkiewicz, Łukasz
Broda, Artur
Gȩbski, Marcin
Muszalski, Jan
Pudis, Dusan
Suffczyński, Jan
Czyszanowski, Tomasz
author_facet Pruszyńska-Karbownik, Emilia
Jandura, Daniel
Dems, Maciej
Zinkiewicz, Łukasz
Broda, Artur
Gȩbski, Marcin
Muszalski, Jan
Pudis, Dusan
Suffczyński, Jan
Czyszanowski, Tomasz
contents Highly reflective mirrors are indispensable components in a variety of state-of-the-art photonic devices. Typically used, bulky, multi-layered distributed Bragg (DBR) reflectors are limited to lattice-matched semiconductors or nonconductive dielectrics. Here, we introduce an inverted refractive-index-contrast grating (ICG), as compact, single layer alternative to DBR. In the ICG, a subwavelength one-dimensional grating made of a low refractive index material is implemented on a high refractive index cladding. Our numerical simulations show that the ICG provides nearly total optical power reflectance for the light incident from the side of the cladding whenever the refractive index of the grating exceeds 1.75, irrespective of the refractive index of the cladding. Additionally, the ICG enables polarization discrimination and phase tuning of the reflected and transmitted light, the property not achievable with the DBR. We experimentally demonstrate a proof-of-concept ICG fabricated according to the proposed design, using the technique of 3D microprinting in which thin stripes of IP-Dip photoresist are deposited on a Si cladding. This one-step method avoids laborious and often destructive etching-based procedures for grating structuration, making it possible to implement the grating on any arbitrary cladding material.
format Preprint
id arxiv_https___arxiv_org_abs_2302_06950
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Concept of Inverted Refractive-Index-Contrast Grating Mirror and Exemplary Fabrication by 3D Microprinting
Pruszyńska-Karbownik, Emilia
Jandura, Daniel
Dems, Maciej
Zinkiewicz, Łukasz
Broda, Artur
Gȩbski, Marcin
Muszalski, Jan
Pudis, Dusan
Suffczyński, Jan
Czyszanowski, Tomasz
Optics
Mesoscale and Nanoscale Physics
Applied Physics
Highly reflective mirrors are indispensable components in a variety of state-of-the-art photonic devices. Typically used, bulky, multi-layered distributed Bragg (DBR) reflectors are limited to lattice-matched semiconductors or nonconductive dielectrics. Here, we introduce an inverted refractive-index-contrast grating (ICG), as compact, single layer alternative to DBR. In the ICG, a subwavelength one-dimensional grating made of a low refractive index material is implemented on a high refractive index cladding. Our numerical simulations show that the ICG provides nearly total optical power reflectance for the light incident from the side of the cladding whenever the refractive index of the grating exceeds 1.75, irrespective of the refractive index of the cladding. Additionally, the ICG enables polarization discrimination and phase tuning of the reflected and transmitted light, the property not achievable with the DBR. We experimentally demonstrate a proof-of-concept ICG fabricated according to the proposed design, using the technique of 3D microprinting in which thin stripes of IP-Dip photoresist are deposited on a Si cladding. This one-step method avoids laborious and often destructive etching-based procedures for grating structuration, making it possible to implement the grating on any arbitrary cladding material.
title Concept of Inverted Refractive-Index-Contrast Grating Mirror and Exemplary Fabrication by 3D Microprinting
topic Optics
Mesoscale and Nanoscale Physics
Applied Physics
url https://arxiv.org/abs/2302.06950