Femtosecond pulse amplification on a chip

Fuente: arXiv
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Main Authors: Gaafar, Mahmoud A., Ludwig, Markus, Wang, Kai, Wildi, Thibault, Voumard, Thibault, Sinobad, Milan, Lorenzen, Jan, Francis, Henry, Zhang, Shuangyou, Bi, Toby, DeľHaye, Pascal, Geiselmann, Michael, Singh, Neetesh, Kärtner, Franz X., Garcia-Blanco, Sonia M., Herr, Tobias
Format: Preprint
Published: 2023
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author Gaafar, Mahmoud A.
Ludwig, Markus
Wang, Kai
Wildi, Thibault
Voumard, Thibault
Sinobad, Milan
Lorenzen, Jan
Francis, Henry
Zhang, Shuangyou
Bi, Toby
DeľHaye, Pascal
Geiselmann, Michael
Singh, Neetesh
Kärtner, Franz X.
Garcia-Blanco, Sonia M.
Herr, Tobias
author_facet Gaafar, Mahmoud A.
Ludwig, Markus
Wang, Kai
Wildi, Thibault
Voumard, Thibault
Sinobad, Milan
Lorenzen, Jan
Francis, Henry
Zhang, Shuangyou
Bi, Toby
DeľHaye, Pascal
Geiselmann, Michael
Singh, Neetesh
Kärtner, Franz X.
Garcia-Blanco, Sonia M.
Herr, Tobias
contents Femtosecond laser pulses enable the synthesis of light across the electromagnetic spectrum and provide access to ultrafast phenomena in physics, biology, and chemistry. Chip-integration of femtosecond technology could revolutionize applications such as point-of-care diagnostics, bio-medical imaging, portable chemical sensing, or autonomous navigation. However, current chip-integrated pulse sources lack the required peak power and on-chip amplification of femtosecond pulses has been an unresolved challenge. Here, addressing this challenge, we report >50-fold amplification of 1 GHz-repetition-rate chirped femtosecond pulses in a CMOS-compatible photonic chip to 800 W peak power with 116 fs pulse duration. This power level is 2-3 orders of magnitude higher compared to those in previously demonstrated on-chip pulse sources and can provide the power needed to address key applications. To achieve this, detrimental nonlinear effects are mitigated through all-normal dispersion, large mode-area and rare-earth-doped gain waveguides. These results offer a pathway to chip-integrated femtosecond technology with peak power-levels characteristic of table-top sources.
format Preprint
id arxiv_https___arxiv_org_abs_2311_04758
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Femtosecond pulse amplification on a chip
Gaafar, Mahmoud A.
Ludwig, Markus
Wang, Kai
Wildi, Thibault
Voumard, Thibault
Sinobad, Milan
Lorenzen, Jan
Francis, Henry
Zhang, Shuangyou
Bi, Toby
DeľHaye, Pascal
Geiselmann, Michael
Singh, Neetesh
Kärtner, Franz X.
Garcia-Blanco, Sonia M.
Herr, Tobias
Optics
Femtosecond laser pulses enable the synthesis of light across the electromagnetic spectrum and provide access to ultrafast phenomena in physics, biology, and chemistry. Chip-integration of femtosecond technology could revolutionize applications such as point-of-care diagnostics, bio-medical imaging, portable chemical sensing, or autonomous navigation. However, current chip-integrated pulse sources lack the required peak power and on-chip amplification of femtosecond pulses has been an unresolved challenge. Here, addressing this challenge, we report >50-fold amplification of 1 GHz-repetition-rate chirped femtosecond pulses in a CMOS-compatible photonic chip to 800 W peak power with 116 fs pulse duration. This power level is 2-3 orders of magnitude higher compared to those in previously demonstrated on-chip pulse sources and can provide the power needed to address key applications. To achieve this, detrimental nonlinear effects are mitigated through all-normal dispersion, large mode-area and rare-earth-doped gain waveguides. These results offer a pathway to chip-integrated femtosecond technology with peak power-levels characteristic of table-top sources.
title Femtosecond pulse amplification on a chip
topic Optics
url https://arxiv.org/abs/2311.04758