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The phase of darkness - measuring the phase of a dark pulse
KTH, School of Engineering Sciences (SCI), Applied Physics, Light and Matter Physics.ORCID iD: 0000-0001-6915-1040
KTH, School of Engineering Sciences (SCI), Applied Physics, Light and Matter Physics.ORCID iD: 0000-0001-5425-8267
KTH, School of Engineering Sciences (SCI), Applied Physics, Light and Matter Physics.ORCID iD: 0000-0001-7688-1367
KTH, School of Engineering Sciences (SCI), Applied Physics, Light and Matter Physics.ORCID iD: 0000-0002-2508-391X
2024 (English)In: EOS ANNUAL MEETING, EOSAM 2024 / [ed] DeStefano, L Velotta, R Descrovi, E, EDP Sciences , 2024, Vol. 309, p. 07014-, article id 07014Conference paper, Published paper (Refereed)
Abstract [en]

Dark optical solitons are solutions to the nonlinear Schrodinger equation in normal dispersion media with positive Kerr nonlinearity, exhibiting a discrete pi phase jump. These solitons are valuable to applications within telecommunication. Recent advancements have demonstrated the generation of two-colour bright-dark soliton pairs through cross-amplitude modulation in laser cavities, resulting in mode locking. In this study we present for the first time full field characterization of the electric field of a dark pulse. We achieved this by performing Blind Frequency Resolved Optical Gating measurements using the synchronous bright pulse as the gate pulse. The retrieved dark pulse verifies the existence of the expected p phase jump in the phase of the dark pulse, confirming theoretical predictions.

Place, publisher, year, edition, pages
EDP Sciences , 2024. Vol. 309, p. 07014-, article id 07014
Series
EPJ Web of Conferences, ISSN 2100-014X
National Category
Atom and Molecular Physics and Optics
Identifiers
URN: urn:nbn:se:kth:diva-360735DOI: 10.1051/epjconf/202430907014ISI: 001353751800132Scopus ID: 2-s2.0-85212478513OAI: oai:DiVA.org:kth-360735DiVA, id: diva2:1941755
Conference
EOS Annual Meeting (EOSAM), SEP 09-13, 2024, Naples, ITALY
Note

QC 20250303

Available from: 2025-03-03 Created: 2025-03-03 Last updated: 2025-08-06Bibliographically approved
In thesis
1. Self-compression of femtosecond pulses in second-order nonlinear media and precise characterisation of ultrashort pulses
Open this publication in new window or tab >>Self-compression of femtosecond pulses in second-order nonlinear media and precise characterisation of ultrashort pulses
2025 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

Femtosecond laser pulses are essential tools in modern science and technology, yet generating pulses that are both extremely short and experimentally accessible remains a persistent challenge. Conventional post-compression methods rely on the Kerr effect, a third-order nonlinear effect, but these approaches often require complex setups and a large laboratory footprint. This thesis explores a fundamentally different route to pulse compression by utilising the coherently driven transversal optical phonon-polariton modes in Potassium Titanyl Phosphate (KTP). Rather than relying on Kerr-based spectral broadening and subsequent dispersive compression, the method exploits strong second-order nonlinearities in KTP to generate polaritons by optical rectification so that their electric fields may be used for efficient Stokes sideband generation by electro-optic interaction. The resulting interplay with normal dispersion in the nonlinear crystal results in an order of magnitude shorter self-compressed pulses generated in a simple setup. Such pulses demand advanced characterisation methods. Building on insights from applied mathematics and optimisation theory, a new retrieval algorithm for Frequency-Resolved Optical Gating (FROG) measurements is introduced, which we call the Line-Search FROG (LSF) algorithm, that decouples the measurement data from the reconstruction process. This greatly improves the performance of the pulse retrieval fidelity in the presence of large amounts of noise. The LSF algorithm is highly versatile and applicable to all FROG geometries, including the so-called double-blind FROG, with which we managed to measure the phase of a mode-locked dark pulse for the first time. Other pulse measurement techniques such as dispersion scan could benefit as well as the underlying optimisation problem is similar. To further improve the performance of pulse characterisation techniques, we also present the Sigma Check, which is a general algorithmic step that aims to reduce the likelihood of stagnating at local minima. This is achieved by performing an image-recognition step that correctly identifies and counteracts local minimums.

Place, publisher, year, edition, pages
Stockholm: KTH Royal Institute of Technology, 2025. p. 143
Series
TRITA-SCI-FOU ; 2025:33
National Category
Atom and Molecular Physics and Optics
Research subject
Physics, Optics and Photonics
Identifiers
urn:nbn:se:kth:diva-368178 (URN)978-91-8106-358-5 (ISBN)
Public defence
2025-08-22, Pärlan, Albanovägen 26, Stockholm, 10:00 (English)
Opponent
Supervisors
Note

QC 2025-08-11

Available from: 2025-08-11 Created: 2025-08-06 Last updated: 2025-08-18Bibliographically approved

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Brunzell, MartinOxelmark Krook, ChristofferLaurell, FredrikPasiskevicius, Valdas

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