Publication

Exploring nonlinearities in multimode optical fibers for lasers and computing

Ugur Tegin
2021
EPFL thesis
Abstract

Multimode optical fibers are the backbone of telecommunication and medical imaging. When light with high intensity travels through a multimode fiber, photons and matter start to interact and propa-gation becomes nonlinear. The nonlinear propagation of light results in variations in the spatial and temporal distribution of the light. Therefore, at the end of the fiber spatial distribution of the light and/or its wavelength changes.In this thesis, nonlinear interactions in multimode fiber are explored and controlled for laser, compu-ting and machine learning applications. Novel approaches for scalable energy-efficient optical compu-ting, learning, and controlling nonlinear dynamics with machine learning tools, ultrashort pulse gener-ation with superior beam qualities, high peak power and stability are demonstrated.Firstly, high-power ultrashort pulse generation in multimode laser cavities is explored. By studying pulse dynamics, significant improvements are achieved and near-single mode output beam profiles are demonstrated. Later, a novel all-fiber laser design is presented to achieve stable ultrashort pulses with a compact and low-cost laser cavity. In the second half of this thesis, machine learning tools are uti-lized to acquire the relation between the nonlinear frequency generation and the initial excitation of the multimode fibers to create tunable frequency sources. Advanced artificial neural network designs are implemented to learn nonlinear light propagation in multimode fibers to replace time consuming conventional simulations. Finally, the nonlinear interactions shaping the propagating beam distribu-tion are employed to process information to perform optical computing with multimode fibers.Multimode fibers are an ideal testbed to investigate complex nonlinear dynamics in nature. We be-lieve the demonstrated applications and the achieved results are just a subset of the capabilities of the optical fiber. These approaches can be used as a steppingstone to demonstrate advanced applica-tions with light.

About this result
This page is automatically generated and may contain information that is not correct, complete, up-to-date, or relevant to your search query. The same applies to every other page on this website. Please make sure to verify the information with EPFL's official sources.
Ontological neighbourhood
Related concepts (32)
Fiber laser
A fiber laser (or fibre laser in Commonwealth English) is a laser in which the active gain medium is an optical fiber doped with rare-earth elements such as erbium, ytterbium, neodymium, dysprosium, praseodymium, thulium and holmium. They are related to doped fiber amplifiers, which provide light amplification without lasing. Fiber nonlinearities, such as stimulated Raman scattering or four-wave mixing can also provide gain and thus serve as gain media for a fiber laser.
Multi-mode optical fiber
Multi-mode optical fiber is a type of optical fiber mostly used for communication over short distances, such as within a building or on a campus. Multi-mode links can be used for data rates up to 100 Gbit/s. Multi-mode fiber has a fairly large core diameter that enables multiple light modes to be propagated and limits the maximum length of a transmission link because of modal dispersion. The standard G.651.1 defines the most widely used forms of multi-mode optical fiber.
Nonlinear optics
Nonlinear optics (NLO) is the branch of optics that describes the behaviour of light in nonlinear media, that is, media in which the polarization density P responds non-linearly to the electric field E of the light. The non-linearity is typically observed only at very high light intensities (when the electric field of the light is >108 V/m and thus comparable to the atomic electric field of ~1011 V/m) such as those provided by lasers. Above the Schwinger limit, the vacuum itself is expected to become nonlinear.
Show more
Related publications (173)

Nonlinear optical diode effect in a magnetic Weyl semimetal

Philip Johannes Walter Moll, Chunyu Guo, Hao Yang

Diode effects are of great interest for both fundamental physics and modern technologies. Electrical diode effects (nonreciprocal transport) have been observed in Weyl systems. Optical diode effects arising from the Weyl fermions have been theoretically co ...
Nature Portfolio2024

Wavelength-stabilized figure-of-9 thulium-doped all-fiber laser emitting 560 fs pulses

Camille Sophie Brès, Moritz Bartnick, Gayathri Bharathan

We demonstrate a figure-of-9 all-fiber thulium-doped laser (TDFL) that generates 560 fs long pulses at 1948 nm wavelength. In order to achieve self-starting passive mode-locking, we utilize an in-fiber Faraday rotator to induce a nonreciprocal phase shift. ...
Bristol2024

Spatiotemporal dissipative soliton resonances in multimode fiber lasers

Haoye Qin, Gang Wang, Bo Fu, Xuchen Wang, Hao Ouyang

Spatiotemporal mode-locking in multimode fiber lasers is intriguing for the complex nonlinear dynamics and the increase of theoretical energy limit. In this paper, we enrich spatiotemporal mode-locking with dissipative soliton resonances, a kind of soliton ...
PERGAMON-ELSEVIER SCIENCE LTD2023
Show more

Graph Chatbot

Chat with Graph Search

Ask any question about EPFL courses, lectures, exercises, research, news, etc. or try the example questions below.

DISCLAIMER: The Graph Chatbot is not programmed to provide explicit or categorical answers to your questions. Rather, it transforms your questions into API requests that are distributed across the various IT services officially administered by EPFL. Its purpose is solely to collect and recommend relevant references to content that you can explore to help you answer your questions.