Direct generation of 96nm pulses in an all-fiber mode-locked Er-doped laser using a 45°-titled fiber grating

Qianqian Huang, Zhijun Yan, Chuanhang Zou, Chengbo Mou, Kaiming Zhou, Lin Zhang

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

Abstract

We demonstrate a dispersion-managed Er-doped all-fiber laser based on nonlinear polarization rotation using a 45°-titled fiber grating. Ultrawide spectrum with full-width half-maximum of 96.41nm at 108MHz repetition rates can be generated directly.
Original languageEnglish
Title of host publicationBragg Gratings, Photosensitivity and Poling in Glass Waveguides and Materials 2018
PublisherOptical Society of America
PagesBW4A.3
ISBN (Print)978-1-943580-43-9
DOIs
Publication statusPublished - 5 Jul 2018
EventBragg Gratings, Photosensitivity and Poling in Glass Waveguides and Materials - Zurich
Duration: 1 Jan 2018 → …

Conference

ConferenceBragg Gratings, Photosensitivity and Poling in Glass Waveguides and Materials
Period1/01/18 → …

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fiber lasers
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polarization
pulses
lasers

Cite this

Huang, Q., Yan, Z., Zou, C., Mou, C., Zhou, K., & Zhang, L. (2018). Direct generation of 96nm pulses in an all-fiber mode-locked Er-doped laser using a 45°-titled fiber grating. In Bragg Gratings, Photosensitivity and Poling in Glass Waveguides and Materials 2018 (pp. BW4A.3). Optical Society of America. https://doi.org/10.1364/BGPPM.2018.BW4A.3
Huang, Qianqian ; Yan, Zhijun ; Zou, Chuanhang ; Mou, Chengbo ; Zhou, Kaiming ; Zhang, Lin. / Direct generation of 96nm pulses in an all-fiber mode-locked Er-doped laser using a 45°-titled fiber grating. Bragg Gratings, Photosensitivity and Poling in Glass Waveguides and Materials 2018. Optical Society of America, 2018. pp. BW4A.3
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title = "Direct generation of 96nm pulses in an all-fiber mode-locked Er-doped laser using a 45°-titled fiber grating",
abstract = "We demonstrate a dispersion-managed Er-doped all-fiber laser based on nonlinear polarization rotation using a 45°-titled fiber grating. Ultrawide spectrum with full-width half-maximum of 96.41nm at 108MHz repetition rates can be generated directly.",
author = "Qianqian Huang and Zhijun Yan and Chuanhang Zou and Chengbo Mou and Kaiming Zhou and Lin Zhang",
year = "2018",
month = "7",
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Huang, Q, Yan, Z, Zou, C, Mou, C, Zhou, K & Zhang, L 2018, Direct generation of 96nm pulses in an all-fiber mode-locked Er-doped laser using a 45°-titled fiber grating. in Bragg Gratings, Photosensitivity and Poling in Glass Waveguides and Materials 2018. Optical Society of America, pp. BW4A.3, Bragg Gratings, Photosensitivity and Poling in Glass Waveguides and Materials, 1/01/18. https://doi.org/10.1364/BGPPM.2018.BW4A.3

Direct generation of 96nm pulses in an all-fiber mode-locked Er-doped laser using a 45°-titled fiber grating. / Huang, Qianqian; Yan, Zhijun; Zou, Chuanhang; Mou, Chengbo; Zhou, Kaiming; Zhang, Lin.

Bragg Gratings, Photosensitivity and Poling in Glass Waveguides and Materials 2018. Optical Society of America, 2018. p. BW4A.3.

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

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AU - Yan, Zhijun

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AU - Mou, Chengbo

AU - Zhou, Kaiming

AU - Zhang, Lin

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N2 - We demonstrate a dispersion-managed Er-doped all-fiber laser based on nonlinear polarization rotation using a 45°-titled fiber grating. Ultrawide spectrum with full-width half-maximum of 96.41nm at 108MHz repetition rates can be generated directly.

AB - We demonstrate a dispersion-managed Er-doped all-fiber laser based on nonlinear polarization rotation using a 45°-titled fiber grating. Ultrawide spectrum with full-width half-maximum of 96.41nm at 108MHz repetition rates can be generated directly.

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BT - Bragg Gratings, Photosensitivity and Poling in Glass Waveguides and Materials 2018

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Huang Q, Yan Z, Zou C, Mou C, Zhou K, Zhang L. Direct generation of 96nm pulses in an all-fiber mode-locked Er-doped laser using a 45°-titled fiber grating. In Bragg Gratings, Photosensitivity and Poling in Glass Waveguides and Materials 2018. Optical Society of America. 2018. p. BW4A.3 https://doi.org/10.1364/BGPPM.2018.BW4A.3