FP7Индивидуална стипендия2012–2014

HARMOFIRE · Harmonic Mode-locked Fibre Lasers

7РП — „Хора“ (Действия „Мария Кюри“)

Период
2012-11-15 → 2014-11-14
Финансиране от ЕС
209 033 €
Участници
1
Схема
MC-IEF

Линиите свързват координатора с партньорите.

Накратко на български

Хармоничните модово-заключени фибърни лазери се разработват чрез теоретично моделиране и използване на въглеродни нанотръби. Тези устройства подобряват прецизността при медицинско образване, оптични комуникации и микрообработка.

Този кратък обзор е генериран от изкуствен интелект

Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.

Резултати накратко

Harmonic Mode-locked Fibre Lasers

The project HARMOFIRE is focused on training activities with a significant effort of fibre lasers development. The key objectives of the project included research-based training in design, fabrication and applications of fibre lasers, development of novel theoretical approaches allowing modelling and stabilization of harmonic mode-locked fibre lasers, fast polarization monitoring and cost-effective stabilisation in fibre lasers. Stabilized mode-locked fibre lasers are important sources for a range of applications such as optical communications, frequency metrology, medical imaging, micro machining and femtochemistry. Mode-locked fibre lasers are cost-efficient, easy to fabricate, have all-fibre design and high output powers. The HARMOFIRE project aims in design, development and optimisation of cost-efficient stable ultra-fast harmonic mode-locked fibre lasers for a range of practical applications that will have a broad positive impact on the European Research Area. HARMOFIRE is focused on theoretical modelling and experimental study of harmonic mode-locked fibre lasers, design and optimization of fibre lasers, polarization control and stabilization of mode-locked fibre lasers with carbon nanotubes saturable absorber. A set of hands-on training activities was performed on design and fabrication of fibre lasers based on carbon nanotubes, fibre splicing, laser dynamics characterization, polarimetry, dispersion measurement, carbon nanotubes and fibre Bragg grating fabrication. Advanced modelling and optimisation of mode-locked fibre lasers was performed using both scalar and vector models. The parameters were chosen close to the experimental system under consideration. The work package was conducted in collaboration with researches from Novosibirsk State University, Moscow Physical Technical Institute and Weierstrass Institute. HARMOFIRE offers novel approaches of monitoring, control and stabilisation of polarization dynamics in fibre lasers. A fast polarimeter with a bandwidth of 500 MHz was developed in collaboration with OFS Labs and Aston University researchers. The novel harmonic mode-locked fibre lasers with carbon nanotubes saturable absorber and highly erbium-doped gain fibre were designed and fabricated. The polarization insensitivity of carbon nanotubes-based saturable absorber extended the possibilities of studying polarization attractors in mode-locked fibre lasers. Polarization dynamics of harmonic mode-locked operation in an erbium-doped fibre laser was performed experimentally. Up to 11th harmonic mode-locking with over 50 dB sidebands suppression ratio was demonstrated in a ring cavity laser with carbon nanotubes saturable absorber. Vector solitons with various polarization dynamics, such as polarization-locked vector solitons, solitons with precessing, switching and chaotic polarization were studied in the harmonic mode-locked fibre lasers for a range of pump power levels. Polarization-locked vector solitons could be obtained for different harmonics and fundamental mode-locking. The novel regime with polarization switching between two orthogonal states of polarization was demonstrated for the grouped solitons. Vector solitons with various polarization attractors were shown at the 11th harmonic, which have a potential application in fibre optic communications, in the context of using multiple polarizations, and in secure communications. The tilted fibre Bragg gratings were implemented into the ring laser cavity to stabilize repetition rate and improve noise performance of the leasers when operating at high harmonics. With the tilted fibre Bragg gratings stable harmonic operation was demonstrated at 19th harmonic with sub-Hz RF linewidth, over 50 dB sidebands suppression ratio (SSR), and pulse repetition rate of 460 MHz. The temporal stability of the mode-locking regime was tested showing stable pulse operation over 16 hours. Stabilized MLFLs will enable increased performance and reduced complexity of optical networks. These results can have potential applications for increased capacity in coherent communications using various polarization-based modulation schemes, such as polarization division multiplexing, polarization switching, and modified coded hybrid subcarrier-amplitude-phase-polarization multiplexing. High flexibility in generation of dynamic polarization states can be also of interest in secure communications, atoms and nanoparticles trapping, and control of magnetization.

Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз

Цел на проекта

Stabilized mode-locked fibre lasers (MLFLs) are important for a range of applications such as optical communications, frequency metrology, medical imaging, micro machining and femtochemistry. MLFLs are cost-efficient, easy to fabricate, have all-fibre design and high output powers.The key aims of the project are: (a) training of Mrs. Habruseva in the fast growing field of fibre lasers; and, (b) development of cost-efficient stable ultra-fast harmonic mode-locked fibre lasers (HMLFLs) for a range of applications. The interdisciplinary training includes fibre components design, fabrication, advanced modelling and implementation, polarization characterization and communication tests, where the host has a crucial expertise. Tatiana will gain additional expertise and knowledge in applications of fibre lasers, laser technologies and modelling through one-month placements at academic and industrial co-hosts. The multidisciplinary activities include supervision and teaching experience, complimentary courses on the project and knowledge management, research funding, proposal writing, and others.In the first year the Fellow will perform modelling and experimental study of HMLFLs, design and fabrication of fibre optics components, assembling of novel device for polarization control and study of HMLFLs with carbon nanotubes and nonlinear polarization evolution. During the second year the Fellow will study stabilization of HMLFLs. These studies will include research on coupled fibre lasers and development of novel methods for noise suppression. Training outcomes will broaden the Fellow’s areas of expertise, enhance her leadership and organisation qualities, and hence will have a great impact on her future career as an independent researcher.Stabilized MLFLs will enable increased performance and reduced complexity of optical networks; they will benefit European community in social, research and economical aspects through contribution to communication technologies.""

Оригинален текст от CORDIS (на английски).

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Данни: CORDIS, © Европейски съюз