Generic placeholder image

Current Alternative Energy

Editor-in-Chief

ISSN (Print): 2405-4631
ISSN (Online): 2405-464X

Research Article

Structural, Morphological, Vibrational, Thermal and Optical Properties of ZnS Quantum Dots in the Polymer Matrix

Author(s): Feroz A. Mir*, Owais I. Mir and Rayees A. Zargar

Volume 3, Issue 1, 2019

Page: [50 - 58] Pages: 9

DOI: 10.2174/2405463103666190704160914

Abstract

Background: Nanotechnology is believed to be a future for new human generations. Among different emerging materials, the Nanocomposites (NCs) would be on front line. The aim of the current study is provide a way to synthesize the ZnS-polyacrylamide NCs with emphasis on the effect of aging on polymer due to its various physical properties.

Objectives: To prepare and study the properties of ZnS-Polymer NCs with drying time in polymer matrix.

Methods: ZnS-polyacrylamide NCs samples were synthesized by adding aqueous suspension of ZnS Nanoparticles (NPs) in Sol of acrylamide: bisacrylamide copolymer. These samples were characterized by X-Ray Diffraction (XRD), Scanning Electron Microscopy (SEM), thermogravimetric analysis (TGA), Fourier transform infrared (FT-IR), UV-Vis, and Photoluminescence (PL) spectroscopy.

Results: From XRD data analysis, nano phase and zinc blend structure of the material are confirmed. From SEM images, the pristine ZnS NPs show spherical morphology, and this texture is still preserved in the polymer composites. FT-IR confirms that there is a strong interaction between polymer chain and ZnS NPs. The TGA results indicate that the incorporation of the NPs impacts the thermal properties of the ZnS-polymer NCs and displays higher thermal stability than the pure polymer matrix. The optical data predicts the band gap and Quantum Confinement Effect (QCE) and reduction of ZnS NPs within the polymer matrix. These NCs show emission in blue region with decreases in intensity with drying time.

Conclusion: ZnS NPs incorporated in polyacrylamide were prepared by copolymer technique. Structural analysis confirms zinc blend structure. The vibration spectra of composites samples predicts an interaction between different functional groups of polymer with the metal sulfide. These NCs show enhanced thermally stability. The observed optical band shows a red shift and quantum confinement effect. The size calculated by XRD and optical data shows good correlation with each other. The PL spectra of the NCs exhibits a broad blue emission with excitation (λex = 320 nm). The visible region emission could be originated from the radiative recombination, involving defect states within the ZnS nanocrystals energy band.

Keywords: Polyacrylamide, quantum dots, UV-vis spectroscopy mass, X-ray diffraction, Nanocomposites (NCs), Scanning Electron Microscopy (SEM).

Graphical Abstract
[1]
W.Q. Peng, G.W. Cong, S.C. Qu, and Z.G. Wang, "Synthesis and photoluminescence of ZnS:Cu nanoparticles", Opt. Mater., vol. 29, no. 2-3, pp. 313-317, 2006.
[2]
C. Bouvy, F. Piret, W. Marine, and B.L. Su, "Preparation, photoluminescent properties and quantum size effect of ZnS nanoparticles @ mesoporous silica CMI-1", Phys. Lett., vol. 433, no. 4-6, p. 350, 2007.
[3]
D. Son, D.R. Jung, J. Kim, T. Moon, C. Kim, and B. Park, "Synthesis and photoluminescence of Mn-doped zinc sulfide nanoparticles", Appl. Phys. Lett., vol. 90, 2007.101910
[http://dx.doi.org/10.1063/1.2711709]
[4]
A. Narayanaswamy, H. Xu, and F. Pradhan, "Formation of nearly monodisperse In2O3 nanodots and oriented-attached nanoflowers: Hydrolysis and alcoholysis vs pyrolysis", J. Am. Chem. Soc., vol. 128, p. 10310, 2006.
[5]
X. Wang, Y. Ding, C.J. Summers, and Z.L. Wang, "Large-scale synthesis of six-nanometer-wide ZnO nanobelts", J. Phys. Chem. B, vol. 108, pp. 8773-8777, 2004.
[6]
K. Tanaka, and K. Shimakawa, Amorphous Chalcogenide Semiconductors and Related Materials., Springer, 2011.
[http://dx.doi.org/10.1007/978-1-4419-9510-0]
[7]
C. Lu, Y. Cheng, Y. Liu, F. Liu, and B. Yang, "A facile route to ZnS–polymer nanocomposite optical materials with high nanophase content via γ‐ray irradiation initiated bulk polymerization", Adv. Mater., vol. 18, p. 1188, 2006.
[http://dx.doi.org/10.1002/adma.200502404]
[8]
C.R. Gorla, N.W. Emanetoglu, S. Liang, W.E. Mayo, Y. Lu, M. Wraback, and H. Shen, "Structural, optical, and surface acoustic wave properties of epitaxial ZnO films grown on (0112) sapphire by metalorganic chemical vapor deposition", J. Appl. Phys., vol. 85, p. 2595, 1999.
[9]
G. Guruswamy, V. Ravindrachary, C. Shruthi, R.N. Sagar, and S. Hegde, "Optical, thermal and morphological study of ZnS doped PVA polymer nano-composites", AIP Conf. Proc.. vol. 1953, 2018, 030211.,
[http://dx.doi.org/10.1063/1.5032546]
[10]
Y. Yang, S. Xue, and S. Liu, "Fabrication and characteristics of ZnS nanocrystals/polymer composite doped with tetraphenylbenzidine single layer structure light‐emitting diode", Appl. Phys. Lett., vol. 69, p. 377, 1996.
[http://dx.doi.org/10.1063/1.118066]
[11]
"N.O. Dantas A.F.G. Monte.W.A. Cardoso, A.G. Brito-Madurro, and P.C. Morais, “Growth and characterisation of ZnO quantum dots in polyacrylamide", Microelectronics J., vol. 36, p. 234, 2005.
[12]
W. Dong, and C. Zhu, "Optical properties of surface-modified CdO nanoparticles", Opt. Mater., vol. 22, p. 227, 2003.
[13]
T.A. Kennedy, E.R. Glaser, P.B. Klein, and R.N. Bhargava, Symmetry and electronic structure of the Mn impurity in ZnS nanocrystals. Phys. Rev., vol. B 52, p. R14, 1995.
[14]
J. Borah, J. Barmn, and K.C. Sarma, "“Effect of pH variation on size and structure of CdS nanocrystalline thin films”, Chalc. Lett.,", vol. 5, pp. 265-271, 2008.
[15]
" Y.L. Li, H.Y. Wang, Y. Jimmy, "Preparation and spectra analysis of nano-ZnS", Guang Pu Xue Yu Guang Pu Fen Xi", vol. 27, p. 1890, 2007.,
[16]
"X.W, Zhao, S. Komuro, S. Fujita, H. Isshiki, Y. Aoyagi and J. Sugano, “Size control of Si nanocrystallites formed in amorphous Si matrix by Er-doping”", Mater. Sci. Eng. B,. vol. 51, pp. 154-157, 1998.
[17]
A.L. Patterson, "The Scherer formula for X-ray particle size determination", Phys. Rev., vol. 56, pp. 978-982, 1939.
[18]
R.A. Zargar, M.A. Bhat, H.A. Reshi, and S.D. Khan, "CdZnO coated film: A material for photovoltaic applications", Results Phys., vol. 9, pp. 1673-1676, 2018.
[http://dx.doi.org/10.1016/j.rinp.2018.02.027]
[19]
K. Park, H.J. Yu, W.K. Chung, B.J. Kim, and S.H. Kim, "Effect of heat-treatment on CdS and CdS/ZnS nanoparticles", J. Mater. Sci., vol. 44, pp. 4315-4320, 2009.
[http://dx.doi.org/10.1007/s10853-009-3641-2]
[20]
D. Sajinovic, Z.V. Saponjic, N. Cvjeticanin, M. Marinovic-Cincovic, and J.M. Nedeljkovic, "Synthesis and characterization of CdS quantum dots-polystyrene composite", Chem. Phys. Lett., vol. 329, pp. 168-172, 2000.
[http://dx.doi.org/10.1016/S0009-2614(00)00990-8]
[21]
A. Tiwari, S.A. Khan, R.S. Kher, S.J. Dhoble, and A.L.S. Chandel, "Synthesis, characterization and optical properties of polymer-based ZnS nanocomposites", Luminescence, vol. 31, no. 2, pp. 428-432, 2016.
[http://dx.doi.org/10.1002/bio.2978] [PMID: 26334003]
[22]
N.F. Mott, and E.A. Davis, Electronic Processes in Non-Crystalline Materials., 2nd ed Clarendon Press: Oxford, 1979.
[23]
F.A. Mir, "Structural and optical properties of ZnS nanocrystals embedded polyacrylamide", J. Optoelectron. Biomed. Mater., vol. 2, no. 2, pp. 79-84, 2010.
[24]
R. Viswanath, N.H.S. Bhojya, K.G.S. Yashavanth, K.M.N. Prashanth, K.N. Harish, M.C. Prabhakara, and R. Praveen, "Synthesis and photoluminescence enhancement of PVA capped Mn2+ doped ZnS nanoparticles and observation of tunable dual emission: A new approach", Appl. Surf. Sci., vol. 301, pp. 126-133, 2014.
[25]
V. Gianotti, D. Antonioli, K. Sparnacci, M. Laus, T.J. Giammaria, F.F. Lupi, G. Seguini, and M. Perego, "On the Thermal Stability of PS-b-PMMA Block and P(S-r-MMA) Random Copolymers for Nanopatterning Applications", Macromolecules, vol. 46, no. 20, pp. 8224-8234, 2013.
[http://dx.doi.org/10.1021/ma401023y]
[26]
A.K. Kole, S. Gupta, P. Kumbhakar, and P.C. Ramamurthy, "Nonlinear optical second harmonic generation in ZnS quantum dots and observation on optical properties of ZnS/PMMA nanocomposites", Opt. Commun., vol. 313, pp. 231-237, 2014.
[http://dx.doi.org/10.1016/j.optcom.2013.10.023]

© 2024 Bentham Science Publishers | Privacy Policy