Nonlinear optical property measurements of rhenium diselenide used for ultrafast fiber laser mode-locking at 1.9 μm

Abstract An experimental investigation into the nonlinear optical properties of rhenium diselenide (ReSe2) was conducted at a wavelength of 1.9 μm using the open-aperture and closed-aperture Z-scan techniques for the nonlinear optical coefficient (β) and nonlinear refractive index (n 2) of ReSe2, re...

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Main Authors: Jinho Lee, Suhyoung Kwon, Taeyoon Kim, Junha Jung, Luming Zhao, Ju Han Lee
Format: Article
Language:English
Published: Nature Publishing Group 2021-04-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-021-88735-1
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spelling doaj-41b05bc72a024019bb13f44d5ce0e4ce2021-05-02T11:32:52ZengNature Publishing GroupScientific Reports2045-23222021-04-0111111110.1038/s41598-021-88735-1Nonlinear optical property measurements of rhenium diselenide used for ultrafast fiber laser mode-locking at 1.9 μmJinho Lee0Suhyoung Kwon1Taeyoon Kim2Junha Jung3Luming Zhao4Ju Han Lee5School of Electrical and Computer Engineering, University of SeoulSchool of Electrical and Computer Engineering, University of SeoulSchool of Electrical and Computer Engineering, University of SeoulSchool of Electrical and Computer Engineering, University of SeoulSchool of Optical and Electronic Information and Wuhan National Laboratory for Optoelectronics, Huazhong University of Science and TechnologySchool of Electrical and Computer Engineering, University of SeoulAbstract An experimental investigation into the nonlinear optical properties of rhenium diselenide (ReSe2) was conducted at a wavelength of 1.9 μm using the open-aperture and closed-aperture Z-scan techniques for the nonlinear optical coefficient (β) and nonlinear refractive index (n 2) of ReSe2, respectively. β and n 2 measured at 1.9 μm were ~ − 11.3 × 103 cm/GW and ~ − 6.2 × 10–2 cm2/GW, respectively, which to the best of our knowledge, are the first reported measurements for ReSe2 in the 1.9-μm spectral region. The electronic band structures of both ReSe2 and its defective structures were also calculated via the Perdew–Becke–Erzenhof functional to better understand their absorption properties. A saturable absorber (SA) was subsequently fabricated to demonstrate the usefulness of ReSe2 for implementing a practical nonlinear optical device at 1.9 μm. The 1.9-μm SA exhibited a modulation depth of ~ 8% and saturation intensity of ~ 11.4 MW/cm2. The successful use of the ReSe2-based SA for mode-locking of a thulium–holmium (Tm–Ho) co-doped fiber ring cavity was achieved with output pulses of ~ 840 fs at 1927 nm. We believe that the mode-locking was achieved through a hybrid mechanism of saturable absorption and nonlinear polarization rotation.https://doi.org/10.1038/s41598-021-88735-1
collection DOAJ
language English
format Article
sources DOAJ
author Jinho Lee
Suhyoung Kwon
Taeyoon Kim
Junha Jung
Luming Zhao
Ju Han Lee
spellingShingle Jinho Lee
Suhyoung Kwon
Taeyoon Kim
Junha Jung
Luming Zhao
Ju Han Lee
Nonlinear optical property measurements of rhenium diselenide used for ultrafast fiber laser mode-locking at 1.9 μm
Scientific Reports
author_facet Jinho Lee
Suhyoung Kwon
Taeyoon Kim
Junha Jung
Luming Zhao
Ju Han Lee
author_sort Jinho Lee
title Nonlinear optical property measurements of rhenium diselenide used for ultrafast fiber laser mode-locking at 1.9 μm
title_short Nonlinear optical property measurements of rhenium diselenide used for ultrafast fiber laser mode-locking at 1.9 μm
title_full Nonlinear optical property measurements of rhenium diselenide used for ultrafast fiber laser mode-locking at 1.9 μm
title_fullStr Nonlinear optical property measurements of rhenium diselenide used for ultrafast fiber laser mode-locking at 1.9 μm
title_full_unstemmed Nonlinear optical property measurements of rhenium diselenide used for ultrafast fiber laser mode-locking at 1.9 μm
title_sort nonlinear optical property measurements of rhenium diselenide used for ultrafast fiber laser mode-locking at 1.9 μm
publisher Nature Publishing Group
series Scientific Reports
issn 2045-2322
publishDate 2021-04-01
description Abstract An experimental investigation into the nonlinear optical properties of rhenium diselenide (ReSe2) was conducted at a wavelength of 1.9 μm using the open-aperture and closed-aperture Z-scan techniques for the nonlinear optical coefficient (β) and nonlinear refractive index (n 2) of ReSe2, respectively. β and n 2 measured at 1.9 μm were ~ − 11.3 × 103 cm/GW and ~ − 6.2 × 10–2 cm2/GW, respectively, which to the best of our knowledge, are the first reported measurements for ReSe2 in the 1.9-μm spectral region. The electronic band structures of both ReSe2 and its defective structures were also calculated via the Perdew–Becke–Erzenhof functional to better understand their absorption properties. A saturable absorber (SA) was subsequently fabricated to demonstrate the usefulness of ReSe2 for implementing a practical nonlinear optical device at 1.9 μm. The 1.9-μm SA exhibited a modulation depth of ~ 8% and saturation intensity of ~ 11.4 MW/cm2. The successful use of the ReSe2-based SA for mode-locking of a thulium–holmium (Tm–Ho) co-doped fiber ring cavity was achieved with output pulses of ~ 840 fs at 1927 nm. We believe that the mode-locking was achieved through a hybrid mechanism of saturable absorption and nonlinear polarization rotation.
url https://doi.org/10.1038/s41598-021-88735-1
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