MIRed Streak · Mid-InfraRed Streak Camera
„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“
- Период
- 2018-07-01 → 2021-06-30
- Финансиране от ЕС
- 232 160 €
- Участници
- 2
- Схема
- MSCA-IF
Линиите свързват координатора с партньорите.
Накратко на български
Лазерни импулси в средната инфрачервена област се разработват, за да се наблюдава как се разпадат молекулите. Това помага за разбирането на взаимодействието между светлината и електроните, което в бъдеще може да се използва при създаването на квантови компютри.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Mid-InfraRed Streak Camera
Other the 36 months schedule of this project, only 17 were finally done because I have found a permanent research position. --- Summary of the context and objectives : The MIRed Streak project aims at developing a laser source of femtosecond pulses in the middle infrared (MIR) with intensity of a few-10microjoules in order to observe light-electron couplings during a molecular dissociation. This would also be useful in the future for quantum control of matter with light, and have potential applications for the creation of quantum computers. Such MIR source is though very challenging to create as it needs to be identical for each laser shot (i.e. Carrier-to-Envelop phase (CEP) stabilized) together with high energy. The two main objectives of the project are (1) to build such a source and (2) to use it to observe a molecular dissociation. As only 17 were done out of the 36 scheduled, only the first objective was fulfilled. --- Summary of the work performed and main results: The combination of three previous technologies was performed to build the laser source : (i) a hollowcore fiber to generate broadband pulses and obtain ultrashort pulse duration, (ii) a frequency-domain pulse shaping to generate in the MIR spectral region, (iii) frequency-domain optical parametric amplification (OPA) to obtain high energy. This unique combination was called FOPA MIR. Few-cycle pulse, stabilized in CEP, centered at 10 micrometers in wavelength, and with an energy a few tens of microjoules were obtained. This source architecture was published. In addition, the characterization of such pulses is very challenging as the technique available in the visible and infrared domain are not scalable to the MIR. Two diagnostics were developed. They were not expected in the initial project, but were compulsory for its success: (i) The FROSt (frequency resolved optical switching) technique aims at measuring the amplitude and phase temporal profiles of MIR pulses by using ultrafast absorption in solids. This technique was published. (ii) A technique to measure the CEP fluctuations of the MIR pulses based on high harmonic generation in solids. This technique was published. --- Progress beyond the state-of-the-art In conclusion, this work provided to the light-matter interaction community (1) a novel architecture of laser pulses in MIR region that is scalable to high energy and high repetition rate infrastructures, (2) together with two novel tools for their characterizations in temporal profile and in CEP stability. Previous state-of-the-art : Previous available sources are not scalable to high rep-rates whereas it is the clear objective of the community. No tool were available to characterize these aspects of such pulses. http://www.emt.inrs.ca/emt/recherche/infrastructures-equipements/laboratoire-sources-femtosecondes --- What is the problem/issue being addressed? The ultrashort long wavelength CEP stable laser sources are almost not available to date, however, it opens a path to many new studies to better understand matter (solid or gas state), and many research teams in the world have been investing many efforts in developping such sources. --- Why is it important for society? Such laser sources will unable very specific quantum control of matter that are compulsory for the creating of quantum computers for instance. --- More information : The following of this work was supposed to consist in using the MIR source in a VMI spectrometer. Unfortunately, the characterization of the source was not doable with available measurement tools that had to be created, so it took extra-time (and non announced publications) so it has not been started. For the training and dessimination, the fellow attended a IP training as announced, and gave a talk to a conference. In addition, the fellow supervized two research interships.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
Understanding matter on its fastest timescales is of major interest in order to answer fundamental questions in physics, chemistry and biology. With the advent of attosecond pulses (1as=10^-18s), atoms, molecules and solids can be deeply excited in a quasi-instantaneous manner leading to ultrafast processes. While electrons can respond to the excitation in only a few-10as to a few tens of femtoseconds (fs), nuclear motions take place in a few-fs to picoseconds (ps). The real challenge is how to probe those dynamics when they are strongly coupled.Attosecond streaking (one attosecond pulse to excite the system, one infrared fs pulse to probe the dynamics) is the most accurate temporal metrology ever implemented. Sub-10as delays have been measured with the accuracy of only a few attoseconds. However, the window of observation is limited to the half optical period of the probe pulse and only dynamics on the fs-timescale can be time-resolved. On the other hand, using a terahertz field as a probe offers a wider window of observation of the ps, but with a low resolution of ~10fs. Unfortunately, vibronic dynamics in which nuclear and electronic motions are strongly coupled occur on an intermediate timescale of a few-fs. The objective of the MIRed Streak project is to develop an intense source of mid-infrared pulses (MIR, wavelength between 5 and 20 microns) to follow the couplings of electron and nuclei dynamics in polyatomic molecules over several 10fs with sub-100as accuracy. This project will provide a powerful novel tool to access a nonesuch insight of ultrafast processes in matter. After studying vibronic dynamics in simple molecules and probing isotopic and mass effects, the long-term objective is to investigate more complex systems such as amino acids and nucleobases, which play an essential role e.g. in the photoprotection of DNA to UV light. Understanding vibronic dynamics will provide a deep insight into the nature of chemical bonds.
Оригинален текст от CORDIS (на английски).
Участници
Връзки
- Виж в CORDIS
- DOI: 10.3030/798205
- https://web.archive.org/web/20200814202502/http://www.emt.inrs.ca/emt/recherche/infrastructures-equipements/laboratoire-sources-femtosecondes
Данни: CORDIS, © Европейски съюз
