H2020Индивидуална стипендия2017–2019

SOLISYNTH · Synthesis of Low Noise Microwaves Using Solitons Locked to an Ultra-Stable Cavity

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

Период
2017-09-01 → 2019-08-31
Финансиране от ЕС
187 420 €
Участници
1
Схема
MSCA-IF-EF-ST

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Накратко на български

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Този кратък обзор е генериран от изкуствен интелект

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

Резултати накратко

Synthesis of Low Noise Microwaves Using Solitons Locked to an Ultra-Stable Cavity

Low-noise radiofrequency and microwave signals are considered of pivotal importance to a wide range of fundamental research and industrial applications including telecommunication networks, radar and lidar systems, long baseline interferometry and tests of fundamental constants. Conventionally, low-noise microwave signals were provided by bulky and expensive microwave oscillators. Due to the increasing need for compact low-noise microwave sources that are suitable for out-of-door navigation, timekeeping and high-speed communication, various alternative methods have been proposed. Among these proposals, optical-frequency-comb based low-noise microwave generation has shown the promise of generating microwaves with extremely low phase noise level that is only limited by fundamental quantum shot noises. SOLISYNTH aimed to demonstrate a coherent and compact optical frequency comb based on the platform of optical microresonators with high quality factors. The innovative approach was to use the unique nonlinear dynamics of dissipative cavity solitons to attenuate noises that are induced by various mechanisms. Once the frequency comb in the optical domain is stabilized, the stability can be transferred to the radiofrequency/microwave domain, thus producing low-noise signals at cavity soliton repetition rates with low power consumption and small footprint. Moreover, because dissipative cavity solitons are formed with delicate physics, they exhibit unique characteristics such as relaxation oscillations. To date, these characteristics have not been fully understood, and a careful investigation on this subject is not only of fundamental importance but also critical to the practical applications based on cavity solitons. In this work we have investigated the complex dissipative soliton dynamics with novel excitation approaches and electrooptic comb based ultrafast examination, and we also have studied how the soliton dynamics introduce noises in the generated microwaves. The project consists of two primary phases: (phase I) soliton comb generation with dispersion-engineered microresonators and investigation of the transient soliton dynamics; and (phase II) spectral purification and generation of low-noise microwaves. Overall, the goal of SOLISYNTH has been fully achieved. Several major objectives, including the generation of broadband and mid-infrared frequency combs based on nano/micro-fabricated resonators and waveguides, the seeding and switching of complex comb states, and the generation of low-noise microwave signals with soliton microcombs, have all been demonstrated. The research results achieved by this project have been published or are currently under review for high-impact journals.

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

Цел на проекта

This project (SOLISYNTH) aims to utilize the novel crystalline microresonator optical frequency comb to synthesize ultra-stable microwaves. The microresonator comb will operate in the state of temporal dissipative soliton and an ultra-stable Fabry-Perot cavity will be used as a reference for the comb to lock to. By using direct optical division with the comb, this work could offer a new approach to synthesize low-phase-noise microwaves in a compact form factor, which could have applications in Radar, timing and telecommunications to radio astronomy. In addition, this project seeks to generate mid-infrared soliton comb with octave spanning bandwidth through dispersion engineering and quantum cascade laser pumping. With its exceptionally high coherence, such frequency comb offers access to the molecular fingerprinting region where many chemical species show distinctive absorption features. Devices based on this research output can find tremendous applications in mining, agriculture and medical diagnosis.Due to the prominent values of the research on microresonator comb, there are many groups in the US delved into this field, and the numbers of publications and filed patents on this topic has been rising rapidly. Hence this project will not only enhance Europe’s position in scientific competition with US, but also gain substantial economic benefits through strengthened industrial innovation. On the other hand, the host group in EPFL will consolidate its leading position in the field by integrating the applicant’s knowledge and experience on ultra-stable cavities and laser stabilization with the soliton comb research, thus facilitating both the fundamental investigation and the commercial development based on the microresonator frequency comb. Moreover, the applicant will acquire both research competencies and managerial and leadership skills, which will serve as the foundation of undertaking independent research and leading scientific and technological developments.

Оригинален текст от CORDIS (на английски).

Участници

  • ECOLE POLYTECHNIQUE FEDERALE DE LAUSANNE · LausanneКоординаторШвейцария

Връзки

Данни: CORDIS, © Европейски съюз