Focused Polarization Gratings in an Azobenzene-Based Molecular Glassy Film

被引:0
作者
Ozols, A. [1 ]
Augustovs, P. [1 ]
Balodis, K. [1 ]
Ozols, K. [1 ]
机构
[1] Riga Tech Univ, Fac Mat Sci & Appl Chem, 3-7 Paula Valdena Str, LV-1048 Riga, Latvia
关键词
Azobenzene-based molecular glassy films; electric gradient force; holographic polarization gratings; light focusing; recording efficiency; photoelastic force; photoisomerization; DIFFRACTION; BEAM;
D O I
10.2478/lpts-2024-0017
中图分类号
O59 [应用物理学];
学科分类号
摘要
Holograms recorded by focused light beams have several advantages over usual plane wave holograms such as reduced size, white light readout possibility and others. Focused polarization grating recording in an azobenzene-based molecular glasy film 5,5,5-triphenylpentyl 4-((4-(2-(4-bis(2-hydroxyethyl)amino)phenyl)-1-cyanovinyl)phenyl)dyazenyl)benzoate (which we shortly denoted as B11) is experimentally studied and compared with such grating recording in other materials. It has been determined that focusing manifests itself differently than in other materials, e.g., as in a-As2S3 and a-As-S-Se chalcogenide films. Thus, it reduces the holographic grating recording efficiency independently of recording and readout beam polarizations. It has also been found that recording efficiency with circularly and orthogonally L-R polarized beams is higher than with linearly polarized p-p beams. The highest diffraction eficiency of 26% is achieved with L-R polarized unfocused beams.Recording efficiency grating period dependences for unfocused beams at 200 J/cm2 exposure and at 1000 J/cm2 exposure are different with a maxima at 2 mu m and 6 mu m, respectively. In contrast, recording efficiency grating period dependences for focused beams at 200 J/cm2 exposure and at 1000 J/cm2 exposure are the same with the maximum at 6 mu m.The obtained results are discussed in terms of trans-cis-trans photoisomerization followed by mass transfer and their light intensity dependence, light electric field gradient force, the photoinduced light scattering and photoelastic forces.
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页码:12 / 22
页数:11
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