期刊文献+

强场太赫兹脉冲波形和频谱的单发测量技术

Single-Shot Waveform and Spectrum Measurement Techniques for Strong Field Terahertz Pulses
原文传递
导出
摘要 基于超快超强激光的强场太赫兹辐射源通常具有较低的重复频率,此类辐射源的表征和应用对太赫兹时域波形和频谱测量技术提出了新要求。介绍了中国科学院物理研究所光物理重点实验室发展的几种针对太赫兹脉冲时域波形和频谱的单发测量系统,重点讨论了每种方案的设计原理和特点。这些单发探测方案适用于低重复频率的强场太赫兹脉冲源,有助于准确表征太赫兹辐射性质、深入理解太赫兹产生机制、拓展强场太赫兹应用范围。 Significance Terahertz(THz)radiation has emerged as a crucial tool in various research domains,including matter manipulation,electron acceleration,and biological physics.The distinct properties of THz radiation are attributed to its unique frequency range between the far infrared and microwave regions,which covers the vibrational and rotational frequency of numerous materials,whereby THz radiation acts as an effective tool for resonant manipulation of such materials.Furthermore,the smaller wavelength of THz radiation than microwaves and the short duration of pulsed terahertz sources result in high peak field strength,presenting an enormous potential for nonlinear matter control and electron acceleration.Terahertz spectroscopy serves as a fundamental component of terahertz application research.However,its unique frequency range presents challenges in detecting terahertz spectrum,as traditional electronic and optical methods are not readily applicable.Intuitively,terahertz energy can be measured with energy meters such as bolometers or pyroelectric detectors.Through the scanning by the terahertz bandpass filter,the terahertz spectrum can be measured.The most prevalent technique for terahertz spectrum detection is the scanning free-space electro-optical sampling method,which necessitates multiple shots to measure the terahertz timedomain waveform.The frequency spectrum can be obtained with a Fourier transformation of the time-domain waveform.However,for low repetition rate terahertz sources and irreversible processes,the scanning method is challenging to utilize,necessitating the development of single-shot terahertz detection techniques.Progress This study presents various single-shot terahertz time-domain waveform and frequency spectrum measurement techniques.The first section discusses single-shot time-domain waveform measurement methods,where the fundamental concept is to encode terahertz time-domain information into the properties of the probe laser,including spectral-encoding and spatial-encoding methods.The chirped ultrafast laser pulse is utilized to map the time information of terahertz radiation onto the spectrum of the probe laser,which is relatively easy to implement with minor modifications of standard scanning terahertz time-domain waveform measurement techniques.However,the time resolution of this technique is limited by the chirped probe pulse duration due to the uncertainty principle.To maintain time resolution at the transform limit of the probe laser,spectral interferometry techniques have been introduced,but the setup,alignment,and data processing required for this approach are more complex than those for standard spectral-encoding methods.Spatial-encoding methods represent another type of encoding,where terahertz time-domain information is encoded into the spatial distribution of the probe laser beam.The first type of spatial-encoding method is non-collinear spatial encoding,which employs an oblique incident probe,and different parts of the beam arrive at the electro-optical crystal at different moments.The setup of this method is relatively simple,and no complex alignment is required in the experiment.However,the time resolution and time window of this approach are contingent on the incident angle and conflict with each other,necessitating careful consideration of the incident angle.The terahertz focal spot may also impact the time window and introduce distortion in the timedomain waveform.The second type of spatial-encoding method utilizes echelons,which have a stair-like shape,to introduce a time interval between different parts of the probe beam.Reflective echelons are more appropriate for measuring terahertz pulses with short pulse duration and may achieve higher time resolution than transmissive echelons.We conducted four types of single-shot terahertz time-domain waveform measurements in our experiment,and their results are presented.However,the spectrum bandwidth using the methods mentioned above may still be limited by the response of the electro-optical crystal and the pulse duration of the probe laser,even if the time resolution is sufficiently high through careful design of the terahertz time-domain waveform measurement system.The second section discusses single-shot terahertz frequency spectrum measurement methods.For terahertz radiation,such as terahertz sources based on laser-solid density plasma interactions,whose frequencies can be up to 30 THz,our research team developed two types of ultrawide bandwidth single-shot spectrometers.The first spectrometer employs multiple terahertz energy detectors with varying terahertz bandpass filters.The terahertz beam is split using silicon wafers,enabling the measurement of the terahertz spectrum in a single shot.This approach has a relatively simple optical design,but the spectrum bandwidth and resolution are restricted by the bandpass filter.To achieve high spectrum resolution with wide spectrum bandwidth,we designed and experimentally demonstrated a novel terahertz autocorrelator,which has ultrawide bandwidth with high frequency resolution.Conclusions and Prospects This study provides an overview of several single-shot terahertz time-domain waveform and frequency spectrum measurement methods developed at the Key Laboratory of Optical Physics in the Institute of Physics,Chinese Academy of Sciences.The emphasis is placed on the design principles and characteristics of each method.These techniques are particularly applicable to strong terahertz sources with low repetition rates and are expected to significantly contribute to the characterization of terahertz radiation,an enhanced understanding of terahertz generation mechanisms,and the advancement of terahertz application research.
作者 雷弘毅 孙方正 陈浩 卫妍玉 张保龙 廖国前 李玉同 Lei Hongyi;Sun Fangzheng;Chen Hao;Wei Yanyu;Zhang Baolong;Liao Guoqian;Li Yutong(Beijing National Laboratory for Condensed Matter Physics,Institute of Physics,Chinese Academy of Sciences,Beijing 100190,China;School of Physical Sciences,University of Chinese Academy of Sciences,Beijing 100049,China;Songshan Lake Materials Laboratory,Dongguan 523808,Guangdong,China;Collaborative Innovation Center of IFSA(CICIFSA),Shanghai Jiao Tong University,Shanghai 200240,China)
出处 《中国激光》 EI CAS CSCD 北大核心 2023年第17期3-12,F0002,共11页 Chinese Journal of Lasers
基金 国家自然科学基金(12122415,12175306,92050106,11827807,92250307) 国家重点研发计划(2021YFA1601700,2021YFA1400204) 中国科学院稳定支持基础研究领域青年团队计划(YSBR-059)。
关键词 测量 太赫兹辐射 电光采样 自相关测量 measurement terahertz radiation electro-optical sampling autocorrelation measurement
  • 相关文献

参考文献6

二级参考文献151

  • 1马新发,张希成.亚皮秒光整流效应[J].物理,1994,23(7):390-393. 被引量:4
  • 2C.Ziener,P.S.Foster,E.J.Divall,C.J.Hooker,M.H.RHutchinson,A.J.Langley,D.Neely. Journal of Applied Physiology . 2003
  • 3R.C.Shah,R.P.Johnson,T.Shimada,K.A.Flippo,J.CFernandez,B.M.Hegelich. Optics Letters . 2009
  • 4T.Tajima,J.M.Dawson. Physics Review Letters . 1979
  • 5L.Xu,L.Yu,X.Liang,Y.Chu,Z.Hu,L.Ma,Y.Xu,CWang,Xi.Lu,H.Lu,Y.Yue,Y.Zhao,F.Fan,H.Tu,Y.Leng,R.Li,Z.Xu. Optics Letters . 2013
  • 6B.Rus,K.Rohlena,J.Sk′ala,B.Kr′alikov′a,K.Jungwirth,J.Ullschmied,K.J.Witte,H.Baumhacker. Lasers Part Beams . 1999
  • 7Z.Major,S.A.Trushin,I.Ahmad,M.Siebold,C.Wandt,S.Klingebiel,T.Wang,J.A.F¨ul¨op,A.Henig,S.Kruber,RWeingartner,A.Popp,J.Osterhoff,R.H¨orlein,J.Hein,VPervak,A.Apolonski,F.Krausz,S.Karsch. Laser Rev . 2009
  • 8XCELS Website,www.xcels.iapras.ru . 2014
  • 9J.Armstrong,G.Beer,R.Campbell,B.Chai,RCross,A.Erlandson,Y.Fei,B.Freitas,R.Kent,J.Menapace,W.Molander,K.Schaffers,C.Siders,S.Sutton,J.Tassano,S.Telford,C.Ebbers,J.Caird,C.Barty. J.Opt.Soc.Am B . 2008
  • 10A.Bayramian,P.Armstrong,E.Ault,R.Beach,C.Bibeau,J.Caird,R.Campbell,B.Chai,J.Dawson,C.Ebbers,AErlandson,Y.Fei,B.Freitas,R.Kent,Z.Liao,T.Ladran,JMenapace,B.Molander,S.Payne,N.Peterson,M.Randles,K.Schaffers,S.Sutton,J.Tassano,S.Telford,EUtterback. Fusion Sci.Technol . 2007

共引文献59

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部