FP7Индивидуална стипендия2014–2017

MIDEX · Mid refractive Index contrast Si photonics platform for telecommunication applications

7РП — „Хора“ (Действия „Мария Кюри“)

Период
2014-05-01 → 2017-04-30
Финансиране от ЕС
342 274 €
Участници
1
Схема
MC-IOF

Линиите свързват координатора с партньорите.

Накратко на български

Силициевата фотоника с материали като силициев нитрид и силициев германий се използва за създаване на оптични схеми и детектори. Тези компоненти помагат за подобряване на системите за пренос на данни чрез по-ефективно управление на светлинните сигнали.

Този кратък обзор е генериран от изкуствен интелект

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

Резултати накратко

Mid refractive Index contrast Si photonics platform for telecommunication applications

The fellow proposed to develop a Si Photonics platform based on mid-refractive index contrast optics (MiDex) of SiN and SiGe for the future dense WDM system. The fellow aims to understand the SiN/SiOxNy optical properties at optimized conditions for Dense WDM system, and develop dense and optimized WDM SiOxNy optical circuitry. Integration between GeSi optoelectronic devices and SiOxNy passive optical circuitry on bulk silicon wafer shall also be studied. During the first months of the project, the fellow learned the deposition techniques and material quality of SiNx deposited at room temperature at the University of Tokyo cleanroom (class1). Despite such low deposition temperature, material characteristics were very promising for the realization of high-performance photonic components. Subsequently, the fellow performed complex design of optical components including array waveguide grating (AWG) for the realization of WDM SiNx optical circuitry. The fellow used a combination of analytical solutions, commercial software of beam propagation method (BPM), and 3D FDTD to come up with a reliable and self-consistent design of AWG. The fellow performed device, fabrication and optical characterization of the AWG and SiNx waveguide. The fellow finished the design of an optical coupling integration between Ge-based device and SiNx waveguide. He then participated in the fabrication of a tested structure to experimentally validate the integration of a Ge-based optical detector with SiNx waveguide on ordinary Si wafer using mainly electron-beam lithography (Advantest F5112), PVD (Sputter Anelva EB1100), and CMP machine (Logitech PM5) at the University of Tokyo cleanroom. In particular, the fellow demonstrated the advantages and disadvantages of using low-temperature deposition of SiNx using a unique physical vapor deposition (PVD). This approach is new in comparison with the ones used by most of the research communities focusing on chemical vapor deposition (CVD) at usually a much higher temperature. Moreover, the fellow used an industrial-compatible and highly-rapid electron-beam lithography of ADVANTEST F5112 for the fabrication of a photonic structure. At the University of Paris-SUD, during the returning phase, the fellow has experimentally developed a strategy to integrate the Ge-based photonics device with a SiN waveguide in the University cleanroom. At the same time, several fabrication and characterization runs have been performed with a view to obtain a high-performance Ge-based waveguide integrated structure around the optical wavelength of 1.3 µm. During the three years of the outgoing and returning phase, to advertise the use of GeSi and/or SiNx on ordinary Si wafer for next generation Si-based photonic chip, the fellow has presented the works in 11 international and 1 national conferences in France, Japan, Canada, Spain and China including 3 invited talks.

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

Цел на проекта

Photonic-Electronic convergence on Silicon (Si Photonics) is about to become the new information technology platform for our modern society, in which the appetite for computer power and communications seems unlimited. For many years, the high refractive index contrast optics (HiDex) between Si core and SiO2 cladding is the platform on which Si Photonics is developed. However, the current HiDex Si Photonics will not fulfill ITU-T Telecom standards for the next generation of dense wavelength division multiplexing (WDM). The strong refractive index contrast between Si and SiO2 of the HiDex platform leads to strong light confinement which has serious detrimental effects for dense WDM in terms of power durability (two-photon absorption and four wave mixing), temperature stability, and technological robustness. The fellow proposes to develop a new Si Photonics platform based on mid-refractive index contrast optics (MiDex) to overcome the incompatibilities of current HiDex Si Photonics for the future dense WDM system. This research project will (1) study electro-optical properties of the MiDex platform using CMOS compatible material of Si nitride (SiN) or Si oxynitride (SiOxNy), SiO2, coupled with germanium (Ge) optoelectronic components on ordinary Si wafer, and (2) demonstrate and evaluate its potentials to meet the strict requirements of future dense WDM Telecom system. The fellow anticipates that MiDex can outperform the incumbent HiDex in meeting the aforementioned challenges. The fellow aims to validate the project’s hypothesis that (i) MiDex is free from two-photon absorption and four wave mixing, (ii) MiDex has sufficiently low refractive index dependence on temperature, (iii) MiDex has lower effective index dependence on geometrical errors (low polarization dependence), and (iv) MiDex allows monolithic integration of photonic circuits on a bulk Si substrate. The ultimate goal of the project is to develop 100 Gb/s optical modules for future high-volume short-reach

Оригинален текст от CORDIS (на английски).

Участници

  • UNIVERSITE PARIS-SUD · ORSAY CEDEXКоординаторФранция

Връзки

Данни: CORDIS, © Европейски съюз