All-Optical Domain Inversion in LiNbO3 Crystals by Visible Continuous-Wave Laser Irradiation

Fuente: arXiv
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Main Authors: Sebastián-Vicente, Carlos, Imbrock, Jörg, Laubrock, Simon, Caballero-Calero, Olga, García-Cabañes, Angel, Carrascosa, Mercedes
Format: Preprint
Published: 2023
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author Sebastián-Vicente, Carlos
Imbrock, Jörg
Laubrock, Simon
Caballero-Calero, Olga
García-Cabañes, Angel
Carrascosa, Mercedes
author_facet Sebastián-Vicente, Carlos
Imbrock, Jörg
Laubrock, Simon
Caballero-Calero, Olga
García-Cabañes, Angel
Carrascosa, Mercedes
contents LiNbO3 is a distinguished multifunctional material where ferroelectric domain engineering is of paramount importance. This degree of freedom of the spontaneous polarization remarkably enhances the applicability of LiNbO3, for instance in nonlinear photonics. However, conventional electrical poling suffers from several drawbacks. Namely, the lithographic patterning of electrodes is cumbersome and expensive, and the spatial resolution is constrained. In this work, we report the first method for all-optical domain inversion of LiNbO3 crystals using continuous-wave visible light. While we mainly focus on iron-doped LiNbO3, the applicability of the method is also showcased in undoped congruent LiNbO3. The technique is outstandingly simple, low-cost and readily accessible. It relies on ubiquitous elements: a light source with low/moderate power, basic optics and a conductive surrounding medium, e.g. water. Light-induced domain inversion is unequivocally demonstrated and characterized by combination of several experimental techniques: pyroelectric trapping of charged microparticles, selective chemical etching, surface topography profilometry, scanning electron microscopy and 3D Cerenkov microscopy. The influence of light intensity, exposure time, laser spot size and surrounding medium is thoroughly studied. Overall, our all-optical method offers straightforward implementation of LiNbO3 ferroelectric domain engineering, potentially sparking new research endeavors aimed at novel optoelectronic applications of photovoltaic LiNbO3 platforms.
format Preprint
id arxiv_https___arxiv_org_abs_2312_13291
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle All-Optical Domain Inversion in LiNbO3 Crystals by Visible Continuous-Wave Laser Irradiation
Sebastián-Vicente, Carlos
Imbrock, Jörg
Laubrock, Simon
Caballero-Calero, Olga
García-Cabañes, Angel
Carrascosa, Mercedes
Materials Science
Applied Physics
Optics
LiNbO3 is a distinguished multifunctional material where ferroelectric domain engineering is of paramount importance. This degree of freedom of the spontaneous polarization remarkably enhances the applicability of LiNbO3, for instance in nonlinear photonics. However, conventional electrical poling suffers from several drawbacks. Namely, the lithographic patterning of electrodes is cumbersome and expensive, and the spatial resolution is constrained. In this work, we report the first method for all-optical domain inversion of LiNbO3 crystals using continuous-wave visible light. While we mainly focus on iron-doped LiNbO3, the applicability of the method is also showcased in undoped congruent LiNbO3. The technique is outstandingly simple, low-cost and readily accessible. It relies on ubiquitous elements: a light source with low/moderate power, basic optics and a conductive surrounding medium, e.g. water. Light-induced domain inversion is unequivocally demonstrated and characterized by combination of several experimental techniques: pyroelectric trapping of charged microparticles, selective chemical etching, surface topography profilometry, scanning electron microscopy and 3D Cerenkov microscopy. The influence of light intensity, exposure time, laser spot size and surrounding medium is thoroughly studied. Overall, our all-optical method offers straightforward implementation of LiNbO3 ferroelectric domain engineering, potentially sparking new research endeavors aimed at novel optoelectronic applications of photovoltaic LiNbO3 platforms.
title All-Optical Domain Inversion in LiNbO3 Crystals by Visible Continuous-Wave Laser Irradiation
topic Materials Science
Applied Physics
Optics
url https://arxiv.org/abs/2312.13291