H2020Индивидуална стипендия2017–2019

WAVEFIL · WAvelength VErsatile Pulsed Raman FIbre Lasers

„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“

Период
2017-01-04 → 2019-01-03
Финансиране от ЕС
195 455 €
Участници
1
Схема
MSCA-IF-EF-ST

Линиите свързват координатора с партньорите.

Накратко на български

Раманските фибърни лазери с топологични изолатори се изследват за генериране на импулсен светлинен лъч в диапазона 1,6–1,8 μm. Тези дължини на вълната са безопасни за човешкото око и помагат при медицински операции, комуникации и мониторинг на въздуха.

Този кратък обзор е генериран от изкуствен интелект

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

Резултати накратко

WAvelength VErsatile Pulsed Raman FIbre Lasers

Raman fibre lasers (RFLs) can emit at a broad wavelength range, due to the flexible Raman gain available at any wavelength across the transparency window of silica (0.3 μm–2.0 μm). RFLs play a particularly significant role for providing laser emissions in the practically important eye-safe wavelength range of 1.6 μm–1.8 μm that typically cannot be covered by traditional rare-earth-doped fibre lasers. This concept of wavelength versatility can also be applied in ultrashort pulsed laser sources, such as mode-locked (ML) lasers, thanks to the broad Raman gain bandwidth. These pulsed RFLs operating within the special wavelength region of 1.6 μm–1.8 μm can attract considerable attention due to their potential applications in areas such as optical coherence tomography, communication, air monitoring, and medical surgery. Two dimensional (2-D) materials like graphene and graphene oxide, characterised by their ultra-broadband nonlinear saturable absorption effect, have been widely used in passively ML lasers as saturable absorbers recently. Topological insulators (TIs), another novel 2-D material, have opened the possibility of a more universal solution, since TI benefits from a virtually wavelength-independent saturable absorption effect and low cost. The WAVEFIL project relates to the novel application of ultra-broadband TI SA in the wavelength-versatile RFL for achieving the special wavelength range at 1.6 μm–1.8 μm that cannot be covered by traditional rare-earth doped lasers. Based on the TI SA, stable harmonically mode-locked operation of a Raman fibre laser was achieved at 1.658 μm. A maximum average output power of up to 130 mW was obtained at the repetition rate of 466.2 MHz, corresponding to the 1250th order harmonic mode-locking. The temporal width of the mode-locked pulse train is 350 ps. Besides, we have extended the lasing wavelength to the mid-IR wavelength region such as ~2.8 μm and ~3.5 μm. High power Er:ZBLAN fiber lasers operating at these two wavelengths have been achieved. Through the project the overall knowledge transfer, including the research methodology and skills from the host institution to the Fellow that are related to the Raman fibre-laser technology, nonlinear optics, and material sciences, has been implemented. The major deliverables achieve from this project can have potential applications in CO2 detection.

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

Цел на проекта

The primary goal of the WAvelength-VErsatile Pulsed Raman FIbre Lasers (WAVEFIL) project is to train a talented researcher with a strong academic background in laser technology and nonlinear optics, through a research programme focused on developing wavelength-versatile, pulsed, Raman fibre lasers (RFLs) at 1.6 μm–1.8 μm, and their applications for simultaneous dual mid-Infrared (mid-IR) laser generation at 2.7 μm and 4.3 μm in an OPO system. These two mid-IR wavelengths are highly desirable as an atmospheric sensing, since both correspond to the peak absorption of the primary greenhouse gas, CO2. The success of this project will contribute knowledge to the fields of laser science and technology, and establish an internationally leading position for Europe in the industrial applications relevant to gas monitoring, medicine and defence.The Fellow, Dr. J. Liu, will receive substantial training activities in professional knowledge and skills in the field of photonics, material sciences and industrial commercialisation. This will take place at the EU host Aston Institute of Photonic Technologies (AIPT), Aston University (Prof. S. K. Turitsyn), and academic secondments of the University of Mons (UMONS) (Dr. A. A. Fotiadi), Tampere University of Technology (TUT) (Prof. O. Okhotnikov), Imperial College London (IC) (Dr. E. Kelleher) and the industrial partner, ART Photonics (Dr. V. Artjushenko). This training-through-research project will significantly enhance the Fellow’s competence in multidisciplinary research areas, establishing him as a leading figure in photonics research and industry communities.This project will explore the commercialisation of a novel laser system and enable a greater market share for gas monitoring applications. A long-term collaboration between the Fellow and host and co-hosts will be established, ultimately resulting in a new level of high-brilliance laser sources and contributing to the European competiveness in laser technology.

Оригинален текст от CORDIS (на английски).

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Данни: CORDIS, © Европейски съюз