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Compact pulsed thulium-doped fiber laser for topographical patterning of hydrogels

Lee Elizabeth et al · Editorial Office of Opto-Electronic Journals Group, Institute of Optics and Electronics, CAS, China · 2020

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We report the generation of high energy 2 μm picosecond pulses from a thulium-doped fiber master oscillator power amplifier system. The all-fiber configuration was realized by a flexible large-mode area photonic crystal fiber (LMA-PCF). The amplifier output is a linearly-polarized 1.5 ns, 100 kHz pulse train with a pulse energy of up to 250 μJ. Pulse compression was achieved with (2+2)-pass chirped volume Bragg grating (CVBG) to obtain a 2.8 ps pulse width with a total pulse energy of 46 μJ. The overall system compactness was enabled by the all-fiber amplifier design and the multi-pass CVBG-based compressor. The laser output was then used to demonstrate high-speed direct-writing capability on a temperature-sensitive biomaterial to change its topography (i.e. fabricate microchannels, foams and pores). The topographical modifications of biomaterials are known to influence cell behavior and fate which is potentially useful in many cell and tissue engineering applications.

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APA 7

al, L. E. E. (2020). Compact pulsed thulium-doped fiber laser for topographical patterning of hydrogels. https://doi.org/10.29026/oea.2020.190039

MLA

al, Lee Elizabeth et. "Compact pulsed thulium-doped fiber laser for topographical patterning of hydrogels." 2020. https://doi.org/10.29026/oea.2020.190039.

Chicago

al, Lee Elizabeth et. 2020. "Compact pulsed thulium-doped fiber laser for topographical patterning of hydrogels.". https://doi.org/10.29026/oea.2020.190039.

Harvard

al, L. E. E. 2020, Compact pulsed thulium-doped fiber laser for topographical patterning of hydrogels, Editorial Office of Opto-Electronic Journals Group, Institute of Optics and Electronics, CAS, China, available at: https://doi.org/10.29026/oea.2020.190039 [Accessed 7 Aug. 2026].

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Title
Compact pulsed thulium-doped fiber laser for topographical patterning of hydrogels
Author / contributors
Lee Elizabeth et al
Publisher
Editorial Office of Opto-Electronic Journals Group, Institute of Optics and Electronics, CAS, China
Publication year
2020
ISSN
2096-4579
ISSN
2096-4579
Language
English

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