DocumentCode
2973711
Title
Conductivity enhancement of nanocomposited MEH-PPV:I-MWNT thin film
Author
Sarah, M.S.P. ; Zahid, F.S. ; Noor, U.M. ; Rusop, M.
Author_Institution
Fac. of Electr. Eng., Univ. Teknol. MARA, Shah Alam, Malaysia
fYear
2012
fDate
24-27 June 2012
Firstpage
677
Lastpage
680
Abstract
In this paper, we report the electrical conductivity of nanocomposited MEH-PPV:I-MWNT thin film by varying the composition of Iodine doped multi-walled nanotubes (I-MWNT) in MEH-PPV matrix from 0, 2 and 4 wt%. Electrical conductivity showed increasing in value as the composition of I-MWNT increased from 0, 2 to 4 wt%. The value of conductivity is very outstanding when the polymer was blended with I-MWNT where the value rise from pure MEH-PPV, 81.6 × 10-4 S/m to 67.68 × 104 and 80.28 × 104 S/m for 2 and 4 wt% respectively. The surface morphology was investigated using atomic for microscopy (AFM). Roughness of the thin film showed decrement in value from 5.385 nm, 0.751 nm and 0.643 nm for 0, 2, and 4 wt% respectively. Meanwhile, the absorbance value increase slightly from about 0.16 (0 wt%) to about 0.165 and 0.17 (2 and 4 wt% respectively). The low absorbance shows that low photon is absorbed and therefore, there is no current changes when the sample is illuminated compared to in dark.
Keywords
atomic force microscopy; carbon nanotubes; conducting polymers; dark conductivity; filled polymers; iodine; nanocomposites; polymer blends; surface morphology; surface roughness; thin films; visible spectra; AFM; C:I; MEH-PPV matrix; absorbance value; atomic force microscopy; electrical conductivity enhancement; iodine doped multiwalled nanotubes; nanocomposited MEH-PPV:I-MWNT thin film; polymer blend; surface morphology; thin film roughness; Carbon nanotubes; Conductivity; Polymers; Rough surfaces; Surface morphology; Surface roughness; I-MWNT; MEH-PPV; conductivity; nanocomposites;
fLanguage
English
Publisher
ieee
Conference_Titel
Humanities, Science and Engineering Research (SHUSER), 2012 IEEE Symposium on
Conference_Location
Kuala Lumpur
Print_ISBN
978-1-4673-1311-7
Type
conf
DOI
10.1109/SHUSER.2012.6268903
Filename
6268903
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