visual
visual

세미나

  • HOME
  • >
  • 소식
  • >
  • 세미나
날짜 2015-07-16 16:00 
연사  
장소 E6-2, 1318 

Next-generation ultrafast laser technology for nonlinear optics and strong-field physics

2015/7/16 (Thurs) 4PM, Rm 1318 (Faculty Conference Rm.)

Dr. Kyunghan Hong, MIT

 

Femtosecond high-power Ti:sapphire chirped-pulse amplification (CPA) laser technology at 800 nm of wavelength has been widely and almost exclusively used over last two decades for studying ultrafast nonlinear optics and strong-field phenomena. Recently ultrafast optical parametric chirped-pulse amplification (OPCPA) technology has made a rapid progress, so that various wavelengths are available at high intensities. The wavelength selectivity provides interesting opportunities in ultrafast nonlinear optics and strong-field phenomena driven especially at mid-infrared (MIR) wavelengths. High-harmonic generation (HHG) driven by MIR wavelengths has been proven to be a reliable way to achieve a tabletop coherent water-window soft X-ray (280-540 eV) or keV source. On the other hand, the super-continuum generation (SCG) in the MIR range is highly useful for detecting biomedical materials and air pollutants with the resonant fingerprints of the common molecules, such as H2O, CO2, CO, and NH4. The highly nonlinear laser filamentation process enables the SCG in bulk dielectrics and gases. 


In this presentation, I review our recent progress on a multi-mJ MIR (2.1 m) OPCPA system operating at a kHz repetition rate, pumped by a picosecond cryogenically cooled Yb:YAG laser. Using this novel MIR source, we demonstrate high-flux soft X-ray HHG up to the water-window range. In addition, I present the MIR filamentation in dielectrics showing 3-octave-spanning SCG and sub-2-cycle self-compression. I will also discuss novel high-energy pulse synthesizer technology based on multi-color OPCPA systems. The work presented here provides an excellent platform of next-generation strong-field laser technology.

 

Contact: HeeKyunh Ahn, Laser Science Research Lab. Tel. 2561

번호 날짜 연사 제목
공지 2026-09-10 16:00  민범기 교수 외  2026년 가을 학기 물리학과 특별세미나 (응집/광학물리 분야)
공지 2026-08-31 16:00  황정아 국회의원 외 13명  2026년 가을학기 콜로키움
203 2019-10-15 16:00    Moiré superlattices and graphene quasicrystal file
202 2023-05-15 16:00    Role of dark Higgs boson in DM physics and cosmology file
201 2020-11-17 12:00    Quantum- & Nano-Photonics" 세미나 시리즈 file
200 2020-12-02 10:00    Recent progress in Axion Dark Matter eXperiment (ADMX) technology file
199 2016-04-18 15:30    First Principles Approaches for Intermolecular Interactions: From Gas-Phase Dimers to Liquid Water and Molecular Crystal Polymorphism file
198 2026-02-19 10:00  Prof. Ron Lifshitz (Tel Aviv University)  What is a Crystal? A new paradigm for an old question file
197 2018-06-22 10:00    Success in Research Career file
196 2025-07-30 14:00  Prof. Sang-Hoon Bae(Washington University in Saint Louis)  Unprecedented physical coupling in nanomembranes-based artificial heterostructures towards 3D chips file
195 2018-11-23 15:00    Entanglement string and Spin Liquid with Holographic duality file
194 2021-02-02 14:30    Quantum- & Nano-Photonics 세미나(Integrated Nanophotonics with Metamaterials, Microcomb, and Atomic Systems) file
193 2019-10-29 10:00    Unconventional Spin Transport in Quantum Materials file
192 2022-04-08 11:00    (응집물리 세미나) Flat-surface-assisted physical phenomena occurring in single crystal metal thin film file
191 2018-11-21 15:00    Engineering topological quantum physics at the atomic scale file
190 2016-06-14 15:00    No-Insulation High Temperature Superconductor Magnet Technology for Compact, Reliable, and Low-Cost High Field DC Magnets
189 2019-12-18 16:00    Road to Higher Tc Superconductivity file
188 2019-07-16 16:00    2019 Physics Distinguished Lecture file
187 2019-07-10 16:00    Public Lectures file
186 2018-10-04 16:00    Engineering light absorption in an ultrathin semiconductor metafilm file
185 2019-12-05 16:00    Subwavelenth Photonic Devices: From Single Photon Sources to Solar Cell file
184 2023-06-16 13:00    Quantum critical states under extreme conditions