Passively Harmonic Mode-locked Er-doped Fiber Laser At 1.15 GHz By Carbon Nanotubes Film Saturable Absorber

Qianqian Huang, Chuanhang Zou, Tianxing Wang, Chengbo Mou, Mohammed Al Araimi, Oleksiy Rozhin

Research output: Chapter in Book/Report/Conference proceedingConference contribution

Abstract

A passively harmonic mode-locked Er-doped fiber laser based on carbon nanotubes film is demonstrated. The 42 nd order of harmonic mode-locking corresponding to 1.15 GHz with 39.17 dB super-mode suppression ratio is obtained for the first time.
Original languageEnglish
Title of host publication2018 Asia Communications and Photonics Conference (ACP)
PublisherIEEE
ISBN (Electronic)978-1-5386-6158-1
ISBN (Print) 978-1-5386-5519-1
DOIs
Publication statusPublished - 31 Dec 2018
EventAsia Communications and Photonics Conference (ACP 2018) - Hangzhou, China
Duration: 26 Oct 201829 Oct 2018

Conference

ConferenceAsia Communications and Photonics Conference (ACP 2018)
CountryChina
CityHangzhou
Period26/10/1829/10/18

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fiber lasers
absorbers
carbon nanotubes
harmonics
locking
retarding

Cite this

Huang, Q., Zou, C., Wang, T., Mou, C., Al Araimi, M., & Rozhin, O. (2018). Passively Harmonic Mode-locked Er-doped Fiber Laser At 1.15 GHz By Carbon Nanotubes Film Saturable Absorber. In 2018 Asia Communications and Photonics Conference (ACP) IEEE. https://doi.org/10.1109/ACP.2018.8595768
Huang, Qianqian ; Zou, Chuanhang ; Wang, Tianxing ; Mou, Chengbo ; Al Araimi, Mohammed ; Rozhin, Oleksiy. / Passively Harmonic Mode-locked Er-doped Fiber Laser At 1.15 GHz By Carbon Nanotubes Film Saturable Absorber. 2018 Asia Communications and Photonics Conference (ACP). IEEE, 2018.
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title = "Passively Harmonic Mode-locked Er-doped Fiber Laser At 1.15 GHz By Carbon Nanotubes Film Saturable Absorber",
abstract = "A passively harmonic mode-locked Er-doped fiber laser based on carbon nanotubes film is demonstrated. The 42 nd order of harmonic mode-locking corresponding to 1.15 GHz with 39.17 dB super-mode suppression ratio is obtained for the first time.",
author = "Qianqian Huang and Chuanhang Zou and Tianxing Wang and Chengbo Mou and {Al Araimi}, Mohammed and Oleksiy Rozhin",
year = "2018",
month = "12",
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doi = "10.1109/ACP.2018.8595768",
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publisher = "IEEE",
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Huang, Q, Zou, C, Wang, T, Mou, C, Al Araimi, M & Rozhin, O 2018, Passively Harmonic Mode-locked Er-doped Fiber Laser At 1.15 GHz By Carbon Nanotubes Film Saturable Absorber. in 2018 Asia Communications and Photonics Conference (ACP). IEEE, Asia Communications and Photonics Conference (ACP 2018), Hangzhou, China, 26/10/18. https://doi.org/10.1109/ACP.2018.8595768

Passively Harmonic Mode-locked Er-doped Fiber Laser At 1.15 GHz By Carbon Nanotubes Film Saturable Absorber. / Huang, Qianqian; Zou, Chuanhang; Wang, Tianxing; Mou, Chengbo; Al Araimi, Mohammed; Rozhin, Oleksiy.

2018 Asia Communications and Photonics Conference (ACP). IEEE, 2018.

Research output: Chapter in Book/Report/Conference proceedingConference contribution

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T1 - Passively Harmonic Mode-locked Er-doped Fiber Laser At 1.15 GHz By Carbon Nanotubes Film Saturable Absorber

AU - Huang, Qianqian

AU - Zou, Chuanhang

AU - Wang, Tianxing

AU - Mou, Chengbo

AU - Al Araimi, Mohammed

AU - Rozhin, Oleksiy

PY - 2018/12/31

Y1 - 2018/12/31

N2 - A passively harmonic mode-locked Er-doped fiber laser based on carbon nanotubes film is demonstrated. The 42 nd order of harmonic mode-locking corresponding to 1.15 GHz with 39.17 dB super-mode suppression ratio is obtained for the first time.

AB - A passively harmonic mode-locked Er-doped fiber laser based on carbon nanotubes film is demonstrated. The 42 nd order of harmonic mode-locking corresponding to 1.15 GHz with 39.17 dB super-mode suppression ratio is obtained for the first time.

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U2 - 10.1109/ACP.2018.8595768

DO - 10.1109/ACP.2018.8595768

M3 - Conference contribution

SN - 978-1-5386-5519-1

BT - 2018 Asia Communications and Photonics Conference (ACP)

PB - IEEE

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Huang Q, Zou C, Wang T, Mou C, Al Araimi M, Rozhin O. Passively Harmonic Mode-locked Er-doped Fiber Laser At 1.15 GHz By Carbon Nanotubes Film Saturable Absorber. In 2018 Asia Communications and Photonics Conference (ACP). IEEE. 2018 https://doi.org/10.1109/ACP.2018.8595768