Mattia Michieletto
Technical University of Denmark
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Publication
Featured researches published by Mattia Michieletto.
Optics Express | 2016
Mattia Michieletto; Jens K. Lyngsø; Christian Jakobsen; Jesper Lægsgaard; Ole Bang; Thomas Tanggaard Alkeskjold
We investigate hollow-core fibers for fiber delivery of high power ultrashort laser pulses. We use numerical techniques to design an anti-resonant hollow-core fiber having one layer of non-touching tubes to determine which structures offer the best optical properties for the delivery of high power picosecond pulses. A novel fiber with 7 tubes and a core of 30µm was fabricated and it is here described and characterized, showing remarkable low loss, low bend loss, and good mode quality. Its optical properties are compared to both a 10µm and a 18µm core diameter photonic band gap hollow-core fiber. The three fibers are characterized experimentally for the delivery of 22 picosecond pulses at 1032nm. We demonstrate flexible, diffraction limited beam delivery with output average powers in excess of 70W.
Optics Express | 2015
Marco Triches; Mattia Michieletto; Jan Hald; Jens K. Lyngsø; Jesper Lægsgaard; Ole Bang
Gas-filled hollow-core photonic crystal fibers are used to stabilize a fiber laser to the 13C2H2 P(16) (ν1+ν3) transition at 1542 nm using saturated absorption. Four hollow-core fibers with different crystal structure are compared in terms of long term lock-point repeatability and fractional frequency instability. The locked fiber laser shows a fractional frequency instability below 4 × 10(-12) for averaging time up to 10(4) s. The lock-point repeatability over more than 1 year is 1.3 × 10(-11), corresponding to a standard deviation of 2.5 kHz. A complete experimental investigation of the light-matter interaction between the spatial modes excited in the fibers and the frequency of the locked laser is presented. A simple theoretical model that explains the interaction is also developed.
Optics Express | 2014
Mattia Michieletto; Jens Lyngsø; Jesper Lægsgaard; Ole Bang
We demonstrate a novel polarization maintaining hollow-core photonic bandgap fiber geometry that reduces the impact of surface modes on fiber transmission. The cladding structure is modified with a row of partially collapsed holes to strip away unwanted surface modes. A theoretical investigation of the surface mode stripping is presented and compared to the measured performance of four 7-cells core fibers that were drawn with different collapse ratio of the defects. The varying pressure along the defect row in the cladding during drawing introduces an ellipticity of the core. This, combined with the presence of antiresonant features on the core wall, makes the fibers birefringent, with excellent polarization maintaining properties.
Optics Express | 2016
Philip G. Westergaard; Jan Thomsen; Martin Romme Henriksen; Mattia Michieletto; Marco Triches; Jens K. Lyngsø; Jan Hald
We demonstrate a compact fibre-based laser system at 2.05 microns stabilized to a CO2 transition using frequency modulation spectroscopy of a gas-filled hollow-core fibre. The laser exhibits an absolute frequency accuracy of 5 MHz, a frequency stability noise floor of better than 7 kHz or 5 × 10-11 and is tunable within ±200 MHz from the molecular resonance frequency while retaining roughly this stability and accuracy.
Fiber Lasers XV: Technology and Systems | 2018
Mette Marie Johansen; Marco Triches; Mattia Michieletto; Christian Jakobsen; Anders S. Olesen; Sidsel R. Papior; Torben Kristensen; Johannes Weirich; Thomas Tanggaard Alkeskjold; Magalie Bondue
Photonic crystal fiber (PCF) technology has radically impacted the scientific and industrial ultrafast laser market. Reducing platform dimensions are important to decrease cost and footprint while maintaining high optical efficiency. We present our recent work on short 85 μm core ROD-type fiber amplifiers that maintain single-mode performance and excellent beam quality. Robust long-term performance at 100 W average power and 250 kW peak power in 20 ps pulses at 1030 nm wavelength is presented, exceeding 500 h with stable performance in terms of both polarization and power. In addition, we present our recent results on hollow-core ultrafast fiber delivery maintaining high beam quality and polarization purity.
Fiber Lasers XV: Technology and Systems | 2018
Thomas Tanggaard Alkeskjold; Sidsel R. Papior; Johannes Weirich; Mette Marie Johansen; Christian Jakobsen; Mattia Michieletto; Marco Triches; Torben Kristensen; Anders S. Olesen; Christian Petersen; Thomas Vestergaard Andersen; Martin D. Maack
Photonic crystal fiber (PCF) technology for ultrafast fiber amplifiers traditionally uses air holes as key elements for large mode area (LMA) fiber designs. These air holes are crucial for the performance of high-end LMA PCFs, but makes splicing and interfacing more complex. To reduce this complexity in mid-range amplifiers, we present single-mode polarization-maintaining Yb-doped LMA PCFs without air holes for easier splicing into monolithic all-fiber amplifier designs. A 30 μm core all-solid spliceable PCF is presented, and amplification of 1064 nm light above 50 W with an optical to optical efficiency of 80 % is demonstrated. Furthermore, to demonstrate the excellent reliability of PCF based monolithic amplifiers, we demonstrate ultra-longterm performance data of > 35 khrs on a 14 μm core step-index type PCF amplifier with low long-term power degradation slope of < 1.5 % / 10,000 h.
Optics Express | 2017
Olena Muliar; Mario A. Usuga Castaneda; Mattia Michieletto; Torben Kristensen; Thomas Tanggaard Alkeskjold; Karsten Rottwitt; Jesper Lægsgaard
We demonstrate a flexible cross-correlated (C2) imaging method in the time domain by application of a tunable and highly flexible light source. An advantage of the flexible C2 method is shown by characterization of the step-index fiber (SMF28) over a broad range of wavelengths from 870nm to 1090nm and by the modal analysis of the distributed modal filtering (DMF) rod fiber within a wavelength range from 1050nm to 1090nm. Also, the influence of the spectral shape and bandwidth on the imaging trace is investigated by deliberately adjusting the input spectrum of the light source. The modal intensity as well as the phase distribution are extracted by the alternative method of 2D FT filtering. Being exceptionally tunable the flexible C2 method gives an ability to adapt the systems parameters in a desired manner satisfying even measurements of very specific fiber designs opening up new possibilities for advanced modal characterization of fibers over broad range of wavelengths.
Proceedings of SPIE | 2016
Mette Marie Johansen; Mattia Michieletto; Torben Kristensen; Thomas Tanggaard Alkeskjold; Jesper Lægsgaard
An improved version of the distributed modal filtering (DMF) rod fiber is tested in a high power setup delivering 350 W/m of extracted signal average power limited by the available pump power. The rod fiber is thoroughly tested to record the transverse modal instability (TMI) behavior and also measure degradation of the TMI threshold with operation time due to induced absorption in the active material increasing the thermo-optical heat load. Multiple testing degrades the rod fiber and TMI threshold from >360 W to a saturated power level of roughly 240 W.
Workshop on Specialty Optical Fibers and Their Applications (2015), paper WT2A.5 | 2015
Mette Marie Johansen; Mattia Michieletto; Torben Kristensen; Thomas Tanggaard Alkeskjold; Jesper Lægsgaard
An improved version of the DMF rod fiber is tested in a high power setup delivering 360W of stable signal power. Multiple testing degrades the fiber and transverse modal instability threshold from >360W to ~290W.
Workshop on Specialty Optical Fibers and Their Applications (2015), paper WF2A.4 | 2015
Mattia Michieletto; Mette Marie Johansen; Jens K. Lyngsø; Jesper Lægsgaard; Ole Bang; Thomas Tanggaard Alkeskjold
We demonstrated robust and bend insensitive fiber delivery of high power pulsed laser with diffraction limited beam quality for two different kind of hollow core photonic band gap fibers.