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Magneto-Optical Thin Films for On-Chip Monolithic Integration of Non-Reciprocal Photonic Devices

Achieving monolithic integration of nonreciprocal photonic devices on semiconductor substrates has been long sought by the photonics research society. One way to achieve this goal is to deposit high quality magneto-optical oxide thin films on a semiconductor substrate. In this paper, we review our r...

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Autores principales: Bi, Lei, Hu, Juejun, Jiang, Peng, Kim, Hyun Suk, Kim, Dong Hun, Onbasli, Mehmet Cengiz, Dionne, Gerald F., Ross, Caroline A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5452783/
https://www.ncbi.nlm.nih.gov/pubmed/28788379
http://dx.doi.org/10.3390/ma6115094
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author Bi, Lei
Hu, Juejun
Jiang, Peng
Kim, Hyun Suk
Kim, Dong Hun
Onbasli, Mehmet Cengiz
Dionne, Gerald F.
Ross, Caroline A.
author_facet Bi, Lei
Hu, Juejun
Jiang, Peng
Kim, Hyun Suk
Kim, Dong Hun
Onbasli, Mehmet Cengiz
Dionne, Gerald F.
Ross, Caroline A.
author_sort Bi, Lei
collection PubMed
description Achieving monolithic integration of nonreciprocal photonic devices on semiconductor substrates has been long sought by the photonics research society. One way to achieve this goal is to deposit high quality magneto-optical oxide thin films on a semiconductor substrate. In this paper, we review our recent research activity on magneto-optical oxide thin films toward the goal of monolithic integration of nonreciprocal photonic devices on silicon. We demonstrate high Faraday rotation at telecommunication wavelengths in several novel magnetooptical oxide thin films including Co substituted CeO(2−δ), Co- or Fe-substituted SrTiO(3−δ), as well as polycrystalline garnets on silicon. Figures of merit of 3~4 deg/dB and 21 deg/dB are achieved in epitaxial Sr(Ti(0.2)Ga(0.4)Fe(0.4))O(3−δ) and polycrystalline (CeY(2))Fe(5)O(12) films, respectively. We also demonstrate an optical isolator on silicon, based on a racetrack resonator using polycrystalline (CeY(2))Fe(5)O(12)/silicon strip-loaded waveguides. Our work demonstrates that physical vapor deposited magneto-optical oxide thin films on silicon can achieve high Faraday rotation, low optical loss and high magneto-optical figure of merit, therefore enabling novel high-performance non-reciprocal photonic devices monolithically integrated on semiconductor substrates.
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spelling pubmed-54527832017-07-28 Magneto-Optical Thin Films for On-Chip Monolithic Integration of Non-Reciprocal Photonic Devices Bi, Lei Hu, Juejun Jiang, Peng Kim, Hyun Suk Kim, Dong Hun Onbasli, Mehmet Cengiz Dionne, Gerald F. Ross, Caroline A. Materials (Basel) Review Achieving monolithic integration of nonreciprocal photonic devices on semiconductor substrates has been long sought by the photonics research society. One way to achieve this goal is to deposit high quality magneto-optical oxide thin films on a semiconductor substrate. In this paper, we review our recent research activity on magneto-optical oxide thin films toward the goal of monolithic integration of nonreciprocal photonic devices on silicon. We demonstrate high Faraday rotation at telecommunication wavelengths in several novel magnetooptical oxide thin films including Co substituted CeO(2−δ), Co- or Fe-substituted SrTiO(3−δ), as well as polycrystalline garnets on silicon. Figures of merit of 3~4 deg/dB and 21 deg/dB are achieved in epitaxial Sr(Ti(0.2)Ga(0.4)Fe(0.4))O(3−δ) and polycrystalline (CeY(2))Fe(5)O(12) films, respectively. We also demonstrate an optical isolator on silicon, based on a racetrack resonator using polycrystalline (CeY(2))Fe(5)O(12)/silicon strip-loaded waveguides. Our work demonstrates that physical vapor deposited magneto-optical oxide thin films on silicon can achieve high Faraday rotation, low optical loss and high magneto-optical figure of merit, therefore enabling novel high-performance non-reciprocal photonic devices monolithically integrated on semiconductor substrates. MDPI 2013-11-08 /pmc/articles/PMC5452783/ /pubmed/28788379 http://dx.doi.org/10.3390/ma6115094 Text en © 2013 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution license (http://creativecommons.org/licenses/by/3.0/).
spellingShingle Review
Bi, Lei
Hu, Juejun
Jiang, Peng
Kim, Hyun Suk
Kim, Dong Hun
Onbasli, Mehmet Cengiz
Dionne, Gerald F.
Ross, Caroline A.
Magneto-Optical Thin Films for On-Chip Monolithic Integration of Non-Reciprocal Photonic Devices
title Magneto-Optical Thin Films for On-Chip Monolithic Integration of Non-Reciprocal Photonic Devices
title_full Magneto-Optical Thin Films for On-Chip Monolithic Integration of Non-Reciprocal Photonic Devices
title_fullStr Magneto-Optical Thin Films for On-Chip Monolithic Integration of Non-Reciprocal Photonic Devices
title_full_unstemmed Magneto-Optical Thin Films for On-Chip Monolithic Integration of Non-Reciprocal Photonic Devices
title_short Magneto-Optical Thin Films for On-Chip Monolithic Integration of Non-Reciprocal Photonic Devices
title_sort magneto-optical thin films for on-chip monolithic integration of non-reciprocal photonic devices
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5452783/
https://www.ncbi.nlm.nih.gov/pubmed/28788379
http://dx.doi.org/10.3390/ma6115094
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