Synthesis, Characterization, and Second Harmonic Generation of Multiferroic Iron‐Doped Lithium Niobate Powders

Author:

García‐Rodríguez Mónica J.1,Sánchez‐Dena Oswaldo12,Velasco‐Cortez Omar A.3,Ordóñez‐Romero César L.3,Vázquez‐Lepe Milton O.4,Jonin Christian5,Farías Rurik1,Brevet Pierre‐François5,Reyes‐Esqueda Jorge‐Alejandro36ORCID

Affiliation:

1. Instituto de Ingeniería y Tecnología Universidad Autónoma de Ciudad Juárez Av. Del Charro 450 Norte Ciudad Juárez Chihuahua 32310 México

2. CONAHCYT Consejo Nacional de Humanidades Ciencias y Tecnologías Av. Insurgentes Sur 1582 Col. Crédito Constructor, Benito Juárez Ciudad de México 03930 México

3. Instituto de Física Universidad Nacional Autónoma de México Circuito de la Investigación Científica Ciudad Universitaria Coyoacán Ciudad de México 04510 México

4. Departamento de Ingeniería de Proyectos Universidad de Guadalajara Guadalajara Jalisco 45100 México

5. Institut Lumière Matière UMR CNRS 5306 Campus LyonTech La Doua Bâtiment Alfred Kastler, 10 Rue Ada Byron Villeurbanne 69622 France

6. Département de Physique Faculté des sciences Université de Sherbrooke Québec J1K 2R1 Canada

Abstract

AbstractRandom granular media can exhibit characteristics that are often related to ordered media. In the present work, this feature is observed in the polarized Second Harmonic Generation (SHG) response from reduced iron‐doped lithium niobate (LN:Fe) powders, which is an unexpected effect due to multiple scattering. In addition, the subsisting‐order properties of the powders can be further controlled by magnetic induction to tailor the SHG response. The samples are characterized by X‐ray Diffraction (XRD), X‐ray Photoelectron Spectroscopy (XPS), and confocal Raman Spectroscopy. The SHG response in the absence and presence of an external static magnetic field is then studied as the fundamental beam focus is translated from air into the powder. The SHG intensity polarization state is studied as a function of the linear polarization of the fundamental beam at the focus depth position, where the maximum SHG recorded intensity is observed. These results demonstrate that the SHG response of LN:Fe powders can be modified by post‐thermal treatment in a reducing atmosphere for photonic applications.

Funder

Universidad Autónoma de Ciudad Juárez

Université de Sherbrooke

Publisher

Wiley

Subject

Electronic, Optical and Magnetic Materials

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