GRATING · Gratings in air-core photonic bandgap fibres for applications within communications, lasers and sensors""
7РП — „Хора“ (Действия „Мария Кюри“)
- Период
- 2011-09-01 → 2012-08-31
- Финансиране от ЕС
- 15 000 €
- Участници
- 1
- Схема
- MC-IIFR
Линиите свързват координатора с партньорите.
Накратко на български
Специални решетки се създават в оптични влакна с въздушно ядро чрез двулъчева интерференчна система и лазер. Това помага за разработването на по-ефективни устройства за телекомуникации, лазери и сензори.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Gratings in air-core photonic bandgap fibres for applications within communications, lasers and sensors
FINAL PUBLISHABLE SUMMARY (Returning Phase) Project Number PIIF-GA-2009-235487 Project Acronym: GRATING Researcher: Dr Yiping Wang Host: Prof. Libo Yuan This GRATING project with a number of PIIF-GA-2009-235487 aims to inscribe novel gratings, including fibre Bragg gratings (FBGs) and long period fibre gratings (LPFGs), in air-core photonic bandgap fibres (PBFs), opening the door to a new class of grating-based devices in hollow-core PBGFs. Because almost 100% of the light propagates in the air holes of the PBF and not in the glass, hollow-core PBGFs represent an important platform for the development of novel grating-based devices, offering potentially enhanced properties for applications in telecommunications, lasers and sensing. During the returning phase of the project, with the support of Marie Curie International Fellowships, we continued the previous research of the project to carry out the project aims and to solve the problems occurred in the coming phase. As reported in the final report for the incoming phase, it is very difficult to write LPFGs and/or FBGs in the hollow-core PBFs by employing a point-to-point technique. Hence, in the returning phase we designed and built a two-beam interference system and for writing novel gratings in the hollow-core PBFs with photosensitivity. Furthermore, we investigated the potential applications of photonic crytal fibers (PCFs). The following results were achieved: (1) A two-beam interference system for writing gratings was designed and built by employing a femtosecond UV laser. Such a system solved the problem of the laser beam alignment during writing grating by using a point-to-point technique employing in the incoming phase. A few grating with high-qualities were written successfully in the normal glass fibers and the solid-core photonic crystal fibers. (2) A Ge-doped air-core PBFs with a photosensitive inner core ring was employed to use a femtosecond UV laser to write a grating in this ring. Unfortunately, no gratings were successfully written in the type of PBF. The reason for our unsuccessful experiments that the Ge-doped air-core PBF employed in our current experiments is not a desired single mode fiber. (3) We developed a versatile technique for filling selectively a fluid, i.e. thermo- or electro-optic polymers or other advanced materials, into desired air holes in a photonic crystal fiber (PCF). By the thermo-optic effect of the fluid filled in the air holes, we demonstrated an invertible fiber-type transformation from a photonic crystal fiber into an index-guiding photonic bandgap fiber. Such a transformation could be used to develop an in-fiber optical switch/attenuator with a high-extinction ratio of more than 35 dB. (4) We also demonstrated the orientation-dependent bending-properties of a half-filed PCF. In other words, the bending properties of the half-filled PCF strongly depend on the bending orientations of the fiber. Such unique bend properties could be used to simultaneously monitor the bending orientation and the curvature of the engineering structures. The reason for our unsuccessful experiments on writing gratings in the Ge-doped air-core PBF is that making such a PBF is hugely challenging so that a suitable air-core PBGFs with a photosensitive ring have been not commercially available so far. The Ge-doped air-core PBF employed in our current experiments is only prototype fiber sample made in the Institute of Photonic Technology (IPHT), Jena, Germany and is not a desired single mode fiber. As a result, until single-mode hollow-core PBFs with high photosensitivity is commercially and gratings are produced the application development aspects of the project will need to remain on hold. We hope to achieve a single-mode air-core PBF with high photosensitivity soon. And then we will continue our current effects on writing gratings in hollow-core PBFs and investigating their potential sensing and communication applications.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
This project aims to inscribe novel gratings, including fibre Bragg gratings and long period fibre gratings, within air-core photonic bandgap fibres (PBFs) and to systematically investigate their applications within optical communications, fibre lasers and sensors. If successful the project will open the door to a host of new grating-based devices. This project will address the fundamental problem of how to induce a periodic index modulation that can be experienced by an optical mode propagating within an air core – a problem that has seriously obstructed the development of gratings and grating-based devices in air-core PBFs for the past decade. I propose to investigate several promising techniques for perturbing/deforming periodically the air holes along the fibre axis with either a CO2 laser, or a femtosecond laser. In addition, I shall develop a special air-core PBF with a photosensitive core wall that should allow grating inscription using the common UV laser exposure technique. Air-core PBF gratings are quite distinct from any former gratings in index-guiding fibres and have unique optical properties due to the air core. Moreover, the unique microstructure in air-core PBFs will allow thermo- or electro-optic polymers and other advanced materials to be incorporated into the air holes/core, offering a new platform for developing innovative communication and sensing devices. Active and passive devices such as in-fibre polarisers, tunable filters, and pulse compressors could be used to develop next generation all-optical fibre communication networks. The smart sensing elements to be developed, especially gas, biochemical, and biophotonic sensors, could be used to monitor environmental pollution, gas concentration, water quality, and the health of railways, bridges, building, and mines. Such applications will greatly promote communication, laser and sensing technologies and should lead to significant economic and societal benefits to Europe.""
Оригинален текст от CORDIS (на английски).
Участници
- Harbin Engineering University · HarbinКоординаторКитай
Връзки
Данни: CORDIS, © Европейски съюз
