Direct sampling of femtosecond electric-field waveforms from an optical parametric oscillator

被引:2
|
作者
Kempf, Hannes [1 ,2 ]
Muraviev, Andrey [3 ]
Breuning, Felix [1 ,2 ]
Schunemann, Peter G. [4 ]
Tenne, Ron [1 ,2 ]
Leitenstorfer, Alfred [1 ,2 ]
Vodopyanov, Konstantin [3 ]
机构
[1] Univ Konstanz, Dept Phys, D-78457 Constance, Germany
[2] Univ Konstanz, Ctr Appl Photon, D-78457 Constance, Germany
[3] Univ Cent Florida, Coll Opt & Photon, CREOL, Orlando, FL 32816 USA
[4] BAE Syst Inc, POB 868,MER15-1813, Nashua, NH 03061 USA
关键词
CARRIER-ENVELOPE-PHASE; COHERENCE PROPERTIES; ATTOSECOND CONTROL; FREQUENCY; GENERATION; FIBER; OFFSET; NOISE;
D O I
10.1063/5.0189059
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Detecting the electric-field waveform of an optical pulse from the terahertz to the visible spectral domain provides a complete characterization of the average field waveform and holds great potential for quantum optics, time-domain (including frequency-comb) spectroscopy, high-harmonic generation, and attosecond science, to name a few. The field-resolved measurements can be performed using electro-optic sampling, where a laser pulse is characterized through an interaction with another pulse of a much shorter duration. The measured pulse train must consist of identical pulses, including their equal carrier-envelope phase (CEP). Due to the limited coverage of broadband laser gain media, creating CEP-stable pulse trains in the mid-infrared typically requires nonlinear frequency conversion, such as difference frequency generation, optical parametric amplification, or optical rectification. These techniques operate in a single-pass geometry, often limiting efficiency. In this work, we demonstrate field-resolved analysis of the pulses generated in a resonant system, an optical parametric oscillator (OPO). Due to the inherent feedback, this device exhibits a relatively high conversion efficiency at a given level of input power. By electro-optic sampling, we prove that a subharmonic OPO pumped with CEP-stable few-cycle fiber-laser pulses generates a CEP-stable mid-infrared output. The full amplitude and phase information renders dispersion control straightforward. We also confirm the existence of an exotic "flipping" state of the OPO directly in the time domain, where the electric field of consecutive pulses has the opposite sign.
引用
收藏
页数:8
相关论文
共 50 条
  • [22] Frequency stability of a femtosecond optical parametric oscillator frequency comb
    Ferreiro, Teresa I.
    Sun, Jinghua
    Reid, Derryck T.
    OPTICS EXPRESS, 2011, 19 (24): : 24159 - 24164
  • [23] Femtosecond optical parametric oscillator with a repetition rate of 504 MHz
    Jiang, J
    Hasama, T
    JAPANESE JOURNAL OF APPLIED PHYSICS PART 1-REGULAR PAPERS SHORT NOTES & REVIEW PAPERS, 2002, 41 (3A): : 1365 - 1368
  • [24] 10-GHz Femtosecond Degenerate Optical Parametric Oscillator
    McCracken, Richard A.
    Cheng, Yuk Shan
    Reid, Derryck T.
    2018 CONFERENCE ON LASERS AND ELECTRO-OPTICS (CLEO), 2018,
  • [25] Synchronously pumped femtosecond optical parametric oscillator at 1053 nm
    Xin Zhong
    JiangFeng Zhu
    BinBin Zhou
    ZhiYi Wei
    Science in China Series G: Physics, Mechanics and Astronomy, 2009, 52 : 1187 - 1190
  • [26] Harmonic repetition-rate femtosecond optical parametric oscillator
    Jiang, J
    Hasama, T
    APPLIED PHYSICS B-LASERS AND OPTICS, 2002, 74 (4-5): : 313 - 317
  • [27] Harmonic repetition-rate femtosecond optical parametric oscillator
    J. Jiang
    T. Hasama
    Applied Physics B, 2002, 74 : 313 - 317
  • [28] Mirror-dispersion-compensated femtosecond optical parametric oscillator
    Hebling, J
    Giessen, H
    Linden, S
    Kuhl, J
    OPTICS COMMUNICATIONS, 1997, 141 (3-4) : 229 - 236
  • [29] Femtosecond optical parametric oscillator with a repetition rate of 504 MHz
    Jiang, Jie
    Hasama, Toshifumi
    Jiang, J. (jiang.jie@aist.go.jp), 1600, Japan Society of Applied Physics (41): : 1365 - 1368
  • [30] OPTICAL ELECTRIC-FIELD DETERMINATION IN WATER
    MCGRATH, PB
    BRADISH, RW
    IEEE TRANSACTIONS ON ELECTRICAL INSULATION, 1988, 23 (02): : 189 - 195