FREQUENCY-RESOLVED OPTICAL GATING WITH THE USE OF 2ND-HARMONIC GENERATION

被引:340
作者
DELONG, KW [1 ]
TREBINO, R [1 ]
HUNTER, J [1 ]
WHITE, WE [1 ]
机构
[1] LAWRENCE LIVERMORE NATL LAB,LIVERMORE,CA 94550
关键词
D O I
10.1364/JOSAB.11.002206
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
We discuss the use of second-harmonic generation (SHG) as the nonlinearity in the technique of frequency-resolved optical gating (FROG) for measuring the full intensity and phase evolution of an arbitrary ultrashort pulse. FROG that uses a third-order nonlinearity in the polarization-gate geometry has proved extremely successful, and the algorithm required for extraction of the intensity and the phase from the experimental data is quite robust. However, for pulse intensities less than approximately 1 MW, third-order nonlinearities generate insufficient signal strength, and therefore SHG FROG appears necessary. We discuss the theoretical, algorithmic, and experimental considerations of SHG FROG in detail. SHG FROG has an ambiguity in the direction of time, and its traces are somewhat unintuitive. Also, previously published algorithms are generally ineffective at extracting the intensity and the phase of an arbitrary laser pulse from the SHG FROG trace. We present an improved pulse-retrieval algorithm, based on the method of generalized projections, that is far superior to the previously published algorithms, although it is still not so robust as the polarization-gate algorithm. We discuss experimental sources of error such as pump depletion and group-velocity mismatch. We also present several experimental examples of pulses measured with SHG FROG and show that the derived intensities and phases are in agreement with more conventional diagnostic techniques, and we demonstrate the high-dynamic-range capability of SHG FROG. We conclude that, despite the above drawbacks, SHG FROG should be useful in measuring low-energy pulses.
引用
收藏
页码:2206 / 2215
页数:10
相关论文
共 25 条
[11]   SELF-PHASE MODULATION IN HYBRIDLY MODE-LOCKED CW DYE-LASERS [J].
ISHIDA, Y ;
NAGANUMA, K ;
YAJIMA, T .
IEEE JOURNAL OF QUANTUM ELECTRONICS, 1985, 21 (01) :69-77
[12]   SINGLE-SHOT MEASUREMENT OF THE INTENSITY AND PHASE OF A FEMTOSECOND UV LASER-PULSE WITH FREQUENCY-RESOLVED OPTICAL GATING [J].
KANE, DJ ;
TAYLOR, AJ ;
TREBINO, R ;
DELONG, KW .
OPTICS LETTERS, 1994, 19 (14) :1061-1063
[13]   SINGLE-SHOT MEASUREMENT OF THE INTENSITY AND PHASE OF AN ARBITRARY ULTRASHORT PULSE BY USING FREQUENCY-RESOLVED OPTICAL GATING [J].
KANE, DJ ;
TREBINO, R .
OPTICS LETTERS, 1993, 18 (10) :823-825
[14]   CHARACTERIZATION OF ARBITRARY FEMTOSECOND PULSES USING FREQUENCY-RESOLVED OPTICAL GATING [J].
KANE, DJ ;
TREBINO, R .
IEEE JOURNAL OF QUANTUM ELECTRONICS, 1993, 29 (02) :571-579
[15]  
KANE DJ, 1992, Patent No. 7966644
[16]  
Levi A., 1987, IMAGE RECOVERY THEOR, P277
[17]   GENERAL-METHOD FOR ULTRASHORT LIGHT-PULSE CHIRP MEASUREMENT [J].
NAGANUMA, K ;
MOGI, K ;
YAMADA, H .
IEEE JOURNAL OF QUANTUM ELECTRONICS, 1989, 25 (06) :1225-1233
[18]   MEASUREMENT OF THE AMPLITUDE AND PHASE OF ULTRASHORT LIGHT-PULSES FROM SPECTRALLY RESOLVED AUTOCORRELATION [J].
PAYE, J ;
RAMASWAMY, M ;
FUJIMOTO, JG ;
IPPEN, EP .
OPTICS LETTERS, 1993, 18 (22) :1946-1948
[19]  
Press W. H., 1992, NUMERICAL RECIPES C, P420
[20]   REALIZATION OF A DIFFRACTION-GRATING AUTOCORRELATOR FOR SINGLE-SHOT MEASUREMENT OF ULTRASHORT LIGHT-PULSES DURATION [J].
SALTIEL, SM ;
STANKOV, KA ;
YANKOV, PD ;
TELEGIN, LI .
APPLIED PHYSICS B-PHOTOPHYSICS AND LASER CHEMISTRY, 1986, 40 (01) :25-27