Electrical properties, structure, and surface morphology of poly(p-xylylene)–silver nanocomposites synthesized by low-temperature vapor deposition polymerization

被引:0
作者
Dmitry R. Streltsov
Karen A. Mailyan
Alexey V. Gusev
Ilya A. Ryzhikov
Natalia A. Erina
Chanmin Su
Andrey V. Pebalk
Sergei A. Ozerin
Sergei N. Chvalun
机构
[1] Enikolopov Institute of Synthetic Polymeric Materials of the Russian Academy of Sciences,
[2] Institute for Theoretical and Applied Electromagnetics of the Russian Academy of Sciences,undefined
[3] Bruker-Nano Inc.,undefined
[4] National Research Centre “Kurchatov Institute”,undefined
来源
Applied Physics A | 2013年 / 110卷
关键词
Silver Nanoparticles; Electrical Behavior; Silver Content; Silver Concentration; Nanomechanical Property;
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中图分类号
学科分类号
摘要
The crystalline structure, surface morphology, electrical, and optical properties of thin films of nanocomposites consisting of silver nanoparticles embedded in poly(p-xylylene) matrix prepared by low-temperature vapor deposition polymerization were studied. Depending on the filler content, the average size of silver nanoparticles varied from 2 to 5 nm for nanocomposites with 2 and 12 vol.% of silver, correspondingly. The optical adsorption in the visible region due to surface plasmon resonance also exhibited a clear correlation from silver content, revealing a red shift of the adsorption peak with the increase of the metal concentration. The temperature dependences of the dc resistance of pure p-xylylene condensate and p-xylylene–silver cocondensates during polymerization as well as temperature dependences of the formed poly(p-xylylene)–silver nanocomposites were examined. The observed variation of the temperature dependences of electrical resistance as a function of silver concentration are attributed to different conduction mechanisms and correlated with the structure of the composites. The wide-angle X-ray scattering and AFM measurements consistently show a strong effect of silver content on the nanocomposite structure. The evolution of the size of silver nanoparticles by thermal annealing was demonstrated.
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页码:413 / 422
页数:9
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共 171 条
[1]  
Biswas A.(2004)undefined Appl. Phys. Lett. 84 2655-undefined
[2]  
Aktas O.C.(2005)undefined Nano Lett. 5 1077-undefined
[3]  
Schuemann U.(2004)undefined Nat. Mater. 3 918-undefined
[4]  
Saeed U.(1996)undefined Science 271 933-undefined
[5]  
Zaporojtchenko V.(1987)undefined Phys. Rev. Lett. 59 109-undefined
[6]  
Faupel F.(2006)undefined Nanotechnol. Russ. 1 58-undefined
[7]  
Strunskus T.(2003)undefined J. Appl. Polym. Sci. 87 708-undefined
[8]  
Tseng R.J.(2010)undefined J. Polym. Sci., Part B, Polym. Phys. 48 2379-undefined
[9]  
Huang J.(2002)undefined Eur. Polym. J. 38 1887-undefined
[10]  
Ouyang J.(1996)undefined Macromol. Chem. Phys. 197 1387-undefined