首站-论文投稿智能助手
典型文献
Complete characterization of ultrafast optical fields by phase-preserving nonlinear autocorrelation
文献摘要:
Nonlinear autocorrelation was one of the earliest and simplest tools for obtaining partial temporal information about an ultrashort optical pulse by gating it with itself.However,since the spectral phase is lost in a conventional autocorrelation measurement,it is insufficient for a full characterization of an ultrafast electric field,requiring additional spectral information for phase retrieval.Here,we show that introducing an intensity asymmetry into a conventional nonlinear interferometric autocorrelation preserves some spectral phase information within the autocorrelation signal,which enables the full reconstruction of the original electric field,including the direction of time,using only a spectrally integrating detector.We call this technique Phase-Enabled Nonlinear Gating with Unbalanced Intensity(PENGUIN).It can be applied to almost any existing nonlinear interferometric autocorrelator,making it capable of complete optical field characterization and thus providing an inexpensive and less complex alternative to methods relying on spectral measurements,such as frequency-resolved optical gating(FROG)or spectral phase interferometry for direct electric-field reconstruction(SPIDER).More importantly,PENGUIN allows the precise characterization of ultrafast fields in non-radiative(e.g.,plasmonic)nonlinear optical interactions where spectral information is inaccessible.We demonstrate this novel technique through simulations and experimentally by measuring the electric field of~6-fs laser pulses from a Ti:sapphire oscillator.The results are validated by comparison with the well-established FROG method.
文献关键词:
作者姓名:
Alexander Gliserin;Soo Hoon Chew;Seungchul Kim;Dong Eon Kim
作者机构:
Department of Optics and Mechatronics Engineering,College of Nanoscience and Nanotechnology,Pusan National University,2 Busandaehak-ro 63beon-gil,Busan 46241,South Korea;Department of Cogno Mechatronics Engineering,College of Nanoscience and Nanotechnology,Pusan National University,2 Busandaehak-ro 63beon-gil,Busan 46241,South Korea;Max Planck Center for Attosecond Science,Max Planck POSTECH/Korea Research Initiative,77 Cheongam-ro,Pohang 37673,South Korea;Department of Physics,Center for Attosecond Science and Technology,Pohang University of Science and Technology,77 Cheongam-ro,Pohang 37673,South Korea
引用格式:
[1]Alexander Gliserin;Soo Hoon Chew;Seungchul Kim;Dong Eon Kim-.Complete characterization of ultrafast optical fields by phase-preserving nonlinear autocorrelation)[J].光:科学与应用(英文版),2022(10):2451-2462
A类:
Gating,PENGUIN,autocorrelator,FROG,SPIDER
B类:
Complete,characterization,ultrafast,optical,fields,by,phase,preserving,nonlinear,autocorrelation,Nonlinear,was,one,earliest,simplest,tools,obtaining,partial,temporal,information,about,ultrashort,gating,itself,However,since,lost,conventional,insufficient,full,electric,requiring,additional,retrieval,Here,show,that,introducing,intensity,asymmetry,into,interferometric,preserves,some,within,signal,which,enables,reconstruction,original,including,direction,using,only,spectrally,integrating,detector,We,call,this,technique,Phase,Enabled,Unbalanced,Intensity,It,can,be,applied,almost,any,existing,making,capable,complete,thus,providing,inexpensive,less,complex,alternative,methods,relying,measurements,such,frequency,resolved,interferometry,More,importantly,allows,precise,radiative,plasmonic,interactions,where,inaccessible,demonstrate,novel,through,simulations,experimentally,measuring,fs,laser,pulses,from,Ti,sapphire,oscillator,results,are,validated,comparison,well,established
AB值:
0.562635
相似文献
Dynamic bifunctional THz metasurface via dual-mode decoupling
Xuan Cong;Hongxin Zeng;Shiqi Wang;Qiwu Shi;Shixiong Liang;Jiandong Sun;Sen Gong;Feng Lan;Ziqiang Yang;Yaxin Zhang-Terahertz Science and Technology Research Center, University of Electronic Science and Technology of China, Chengdu 610000, China;College of Materials Science and Engineering, Sichuan University, Chengdu 610065, China;National Key Laboratory of Application Specific Integrated Circuit, Hebei Semiconductor Research Institute, Shijiazhuang 050051, China;Key Laboratory of Nanodevices and Applications, Suzhou Institute of Nano-Tech and Nano-Bionics (SINANO), Chinese Academy of Sciences, Suzhou 215123, China;Yangtze Delta Region Institute (HuZhou), University of Electronic Science and Technology of China, Huzhou 313001, China
Spectrally tunable high-power Yb∶fiber chirped-pulse amplifier
VALENTINA SHUMAKOVA;VITO F.PECILE;JAKOB FELLINGER;MICHAEL LESKOWSCHEK;P.E.COLLIN ALDIA;ALINE S.MAYER;LUKAS W.PERNER;SARPER SALMAN;MINGQI FAN;PRANNAY BALLA;STéPHANE SCHILT;CHRISTOPH M.HEYL;INGMAR HARTL;GIL PORAT;OLIVER H.HECKL-Christian Doppler Laboratory for Mid-IR Spectroscopy and Semiconductor Optics,Faculty Center for Nano Structure Research,Faculty of Physics,University of Vienna,A-1090 Vienna,Austria;Photonics Institute,TU Wien,A-1040 Vienna,Austria;Vienna Doctoral School in Physics,University of Vienna,A-1090 Vienna,Austria;Deutsches Elektronen-Synchrotron DESY,22607 Hamburg,Germany;Laboratoire Temps-Fréquence,Université de Neuchatel,CH-2000 Neuchatel,Switzerland;GSI Helmholtzzentrum für Schwerionenforschung GmbH,64291 Darmstadt,Germany;Helmholtz-Institute Jena,07743 Jena,Germany;Department of Electrical and Computer Engineering,University of Alberta,Edmonton,Alberta T6G 1H9,Canada;Department of Physics,University of Alberta,Edmonton,Alberta T6G 2E1,Canada
机标中图分类号,由域田数据科技根据网络公开资料自动分析生成,仅供学习研究参考。