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Nonlinear optical properties of indium phthalocyanine axially grafted polystyrene thin film  ( EI收录)  

文献类型:期刊文献

中文题名:Nonlinear Optical Properties of Indium Phthalocyanine Axially Grafted Polystyrene Thin Film

英文题名:Nonlinear optical properties of indium phthalocyanine axially grafted polystyrene thin film

作者:Zhu, Rong-Yi[1,2]; Qiu, Xue-Qiong[1,2]; Chen, Yu[3]; Qian, Shi-Xiong[1]

机构:[1] Department of Physics, Fudan University, Shanghai 200433, China; [2] National Key Laboratory of Surface Physics, Fudan University, Shanghai 200433, China; [3] Laboratory for Advanced Materials, Department of Chemistry, East China University of Science and Technology, Shanghai 200237, China

年份:2006

卷号:23

期号:3

起止页码:622

中文期刊名:Chinese Physics Letters

外文期刊名:Chinese Physics Letters

收录:CSTPCD;;EI(收录号:20220711655800);Scopus;CSCD:【CSCD2011_2012】;

基金:Supported by the National Natural Science Foundation of China under Grant Nos 10274013, 10374020, and 20546002, the East China University of Science and Technology/Ireland Science and Technology Collaboration Research Foundation (No CI-2004-06), SRF for R0CS, and STCSM (No 05XD14004).

语种:英文

中文关键词:ABSORPTION

外文关键词:Nonlinear optics - Polystyrenes - Thin films - Optical Kerr effect

摘要:Ultrafast dynamics and third-order nonlinearity of thin films of tert-butyl peripherally-substituted indium phthalocyanine axlally grafted polystyrene (tBu4PcIn-PS) are investigated by femtosecond optical-Kerr-effect (OKE) and z-scan experiments. The fastest component (〈 200 fs) in the OKE traces of the film is related to the electron cloud distortion, where the phthalocyanine-polymer interaction may enhance this contribution. The z-scan measurement also indicates that this interaction might enhance the third-order optical nonlinearity. The measurements shows that the magnitudes of X(3) of these films are in order of 10^-11 esu.
Ultrafast dynamics and third-order nonlinearity of thin films of tert-butyl peripherally-substituted indium phthalocyanine axially grafted polystyrene (tBu4PcIn-PS) are investigated by femtosecond optical-Kerr-effect (OKE) and z-scan experiments. The fastest component ((3) of these films are in order of 10-11 esu. ? 2005 Chinese Physical Society and IOP Publishing Ltd.

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