CONDENSED MATTER: ELECTRONIC STRUCTURE, ELECTRICAL, MAGNETIC, AND OPTICAL PROPERTIES |
|
|
|
|
Effects of Contents of Multiwall Carbon Nanotubes in Polyaniline Films on Optical and Electrical Properties of Polyaniline |
N. Bafandeh1, M. M. Larijani2**, A. Shafiekhani3,4, M. R. Hantehzadeh1, N. Sheikh2 |
1Department of Physics, Science and Research Branch, Islamic Azad University, Tehran, Iran 2Nuclear Radiation Applications Research School, Nuclear Science and Technology Research Institute, Tehran, Iran 3Physics Department, Alzahra University, Tehran, Iran 4School of Physics, Institute for Research in Fundamental Sciences, Tehran, Iran
|
|
Cite this article: |
N. Bafandeh, M. M. Larijani, A. Shafiekhani et al 2016 Chin. Phys. Lett. 33 117801 |
|
|
Abstract We investigate the effects of different contents of multiwall carbon nanotubes (MWCNTs) on optical and electrical properties of polyaniline (PANI). The MWCNTs/PANI composites are deposited on glass substrates coated with indium tin oxide (ITO) by the spin-coating technique. The scanning electron microscopy shows that nanotubes are coated with the PANI layer and x-ray diffraction patterns show that all deposited composite films have an amorphous character. The analysis of a UV-vis spectrophotometer indicates the blue shift of the absorbance peak and a decrease in optical band gap value by the enhancement of the CNT content in the PANI matrix while the Urbach energy increases. The Raman spectrum shows the blue shift 1404$\rightarrow$1417 cm$^{-1}$ and photoluminescence spectra show an increase in the intensity of characteristic PANI peak at 436 nm with the increasing CNT content.
|
|
Received: 30 June 2016
Published: 28 November 2016
|
|
PACS: |
78.20.-e
|
(Optical properties of bulk materials and thin films)
|
|
82.35.Lr
|
(Physical properties of polymers)
|
|
61.82.Pv
|
(Polymers, organic compounds)
|
|
64.70.pj
|
(Polymers)
|
|
|
|
|
[1] | Palaniappan S and John A 2008 Prog. Polym. Sci. 33 732 | [2] | Zhang X, Ji L, Zhang S and Yang W 2007 J. Power Sources 173 1017 | [3] | Kulkarni V G, Campbell L D and Mathew W R 1989 Synth. Met. 30 321 | [4] | Heeger A J 2001 Rev. Mod. Phys. 73 681 | [5] | T?lu ? Solaymani S, Bramowicz M, Naseri N, Kulesza S and Ghaderi A 2016 RSC Adv. 6 27228 | [6] | Stach S, Garczyk, T?lu ? Solaymani S, Ghaderi A, Moradian R, Nezafat Negin B, Elahi S M and Gholamali H 2015 J. Phys. Chem. C 119 17887 | [7] | T?l ? Bramowicz M, Kulesza S, Solaymani S, Shafikhani A, Ghaderi A and Ahmadirad M 2016 J. Ind. Eng. Chem. 35 158 | [8] | T?lu ? Bramowicz M, Kulesza S, Shafiekhani A, Ghaderi A, Mashayekhi F and Solaymani S 2015 Ind. Eng. Chem. Res. 54 8212 | [9] | Srivastavaa S, Sharma S S, Kumar S, Agrawal Sh, Singh M and Vijay Y K 2009 Int. J. Hydrogen Energy 34 8444 | [10] | Lin, Y, Cui, X, Yen, C H and Wai C M 2005 Langmuir 21 11474 | [11] | Lee H, Rim H, Lee J Y, Lee J, Yoon J, Bae W and Yang S 2008 J. Nanosci. Nanotechnol. 8 5464 | [12] | Ikeda N, Teshima K and Miyasaka T 2006 Chem. Commun. 16 1733 | [13] | Singh R, Dhand C, Sumana G, Verma R, Sood S, Gupta R K and Malhotra B D 2010 J. Mol. Recognit. 23 472 | [14] | Ben-Valid S, Dumortier H, Decossas M, Sfez R, Meneghetti M, Bianco A and Yitzchaik S 2010 J. Mater. Chem. 20 2408 | [15] | Yao Q, Chen L D, Zhang W Q, Liufu S C and Chen X H 2010 ACS Nano 4 2445 | [16] | Panhuis M I H, Doherty K J, Sainz R, Benito A M and Maser W K 2008 J. Phys. Chem. C 112 1441 | [17] | Zhou Y, Qin Z Y, Li L, Zhang Y, Wei Y L, Wang L F and Zhu M F 2010 Electrochim. Acta 55 3904 | [18] | Haspulat B, Gulce A and Gulce H 2013 Hazardous Mater. 260 518 | [19] | Nasirian S and Milani M H 2014 Int. J. Hydrogen Energy 39 630 | [20] | Choi D, Hong S and Son Y 2014 Materials 7 7662 | [21] | Patil S L, Chougule M A, Pawar S G, Sen S and Patil V B 2012 Soft Nanosci. Lett. 2 46 | [22] | Chakraborty G, Gupta K, Rana D and Meikap A K 2012 Adv. Nat. Sci.: Nanosci. Nanotechnol. 3 035015 | [23] | Subramanian S and Padiyan D P 2008 Mater. Chem. Phys. 107 392 | [24] | Choudhury B, Dey M and Choudhury A 2013 Int. Nano Lett. 3 25 | [25] | Tauc J 1974 Amorphous and Liquid Semiconductors (London: Plenum Press) | [26] | Yuan B, Yu L, Sheng L, An K and Zhao X 2012 J. Phys. D 45 235108 | [27] | Zhang J, Liu C and Shi G 2005 J. Appl. Polym. Sci. 96 732 | [28] | Urbach B, Korbakov N, Bar-David Y, Yitzchaik S and Sa'ar A 2007 J. Phys. Chem. C 111 16586 | [29] | Babu V J, Vempati S and Ramakrishna S 2013 Mater. Sci. Appl. 4 1 | [30] | Devi M R, Lawrence B, Prithivikumaran N and Jeyakumaran N 2014 Chem. Tech. Res. 13 5400 | [31] | Gfroerer T H 2000 Encyclopedia of Analytical Chemistry (Chichester: John Wiley & Sons) p 9209 |
|
|
Viewed |
|
|
|
Full text
|
|
|
|
|
Abstract
|
|
|
|
|