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Research Article

Effect of MoO3 nanofiller on structural, optical, mechanical, dielectric and thermal properties of PVA/PVP blend

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Pages 270-278 | Received 09 Apr 2019, Accepted 01 Aug 2019, Published online: 14 Aug 2019

References

  • Ramesan MT, Varghese M, Periyat P. Silver-doped zinc oxide as a nanofiller for development of poly(vinyl alcohol)/poly(-vinyl pyrrolidone) blend nanocomposites. Adv Polym Technol. 2018;37(1):137–143.
  • Abdelrazek EM, Elashmawi IS, El-khodary A, et al. Structural, optical, thermal and electrical studies on PVA/PVP blends filled with lithium bromide. Curr Appl Phys. 2010;10:607–613.
  • Ben Doudou B, Vivet A, Chen J, et al. Hybrid carbon nanotube—silica/polyvinyl alcohol nanocomposites films: preparation and characterisation. J Polym Res. 2014;21:420.
  • Kochi R, Crasta V, Kumar R, et al. Study of structural, optical and photoluminescence properties of ZnO doped PVA/PVP nanocomposite. In: Prof.Dinesh Varshney memorial National Conference on Physics and Chemistry of Materials:AIP Conference Proceedings. Vol. 2100; 2019. p. 020045.
  • Baraker BM, Lobo B. Experimental study of PVA– PVP blend films doped with cadmium chloride monohydrate. Indian J Pure Appl Phys. 2016;54:634–640.
  • Ramesan MT. Synthesis and characterization of magnetoelectric nanomaterial composed of Fe3O4 and polyindole. Adv Polym Technol. 2013;32:928–934.
  • Pasha SKK, Deshmukh K, Ahamed MB, et al. Investigation of microstructure, morphology, mechanical, and dielectric properties of PVA/PbO nanocomposites. Adv Polym Technol. 2015;36:352–361.
  • Ramesan MT. Fabrication and characterization of conducting nanomaterials composed of copper sulfide and polyindole. Polym Compos. 2012;33:2169–2176.
  • Subiela JR, Lopez J, Balart R, et al. Electrical properties of EVA filled by zinc powder. J Mater Sci. 2006;41:6396–6402.
  • Ramesan MT, Varghese M, Jayakrishnan P, et al. Silver-Doped Zinc Oxide as a nanofiller for development of Poly(vinyl alcohol/Poly(vinyl pyrrolidone) blend nanocomposites Adv Polym Technol. 2016;37(1). C Wiley Periodicals, Inc. doi:10.1002/adv.21650.
  • Baeg KJ, Caironi M, Noh YY. Toward printed integrated circuits based on unipolar or ambipolar polymer semiconductors. Adv Mater. 2013;25:4210–4244.
  • Jayakrishnan P, Ramesan MT. Synthesis, characterization and electrical properties of Fe3O4Fe3O4/poly(vinyl alcohol-co-acrylic acid) nanocomposites. AIP Conf Proc . 2014;1620:165–172.
  • Ma R, Xiong D, Miao F, et al. Friction properties of novel PVP/PVA blend hydrogels as artificial cartilage. J Biomed Mater Res Part A. 2010;93:1016–1019.
  • Ma R, Xiong D, Miao F, et al. Novel PVP/PVA hydrogels for articular cartilage replacement. Mater Sci Eng. 2009;29:1979–1983.
  • Mallakpour S, Jarahiyan A. Enhancement of Poly(Vinyl Alcohol)–Poly(Vinyl Pyrrolidone) blend properties using modified copper (II) oxide and ultrasonic irradiation. Polym Plast Technol Eng. 2017;56:1059–1067.
  • Rathod SG, Bhajantri RF, Ravindrachary V, et al. Pressure sensitive dielectric properties of TiO2 doped PVA/CN-Li nanocomposite. J Polym Res. 2015;22:6.
  • Rathod SG, Bhajantri RF, Ravindrachary V, et al. High mechanical and pressure sensitive dielectric properties of graphene oxide doped PVA nanocomposites. RSC Adv. 2016;6:77977–77986.
  • Alsaif MMYA, Latham K, Field MR, et al. Tunable plasmon resonances in twodimensional molybdenum oxide nanoflakes. Adv Mater. 2014;26:3931−3937.
  • Chen D, Liu M, Yin L, et al. Single-crystalline MoO3 nanoplates: topochemical synthesis and enhanced ethanol-sensing performance. J Mater Chem. 2011;21:9332.
  • Balendhran S, Walia S, Alsaif M, et al. Field Effect Biosensing Platform Based on 2D α-MoO3. ACS Nano. 2013;11:9753−9760.
  • Chen YJ, Gao XM, Di XP, et al. Porous iron molybdate nanorods: in situ diffusion synthesis and low- temperature H2S gas sensing. ACS Appl Mater Interfaces. 2013;5:3267−3274.
  • Wang Y, Zhang X, Luo Z, et al. Liquid- phase growth of platinum nanoparticles on molybdenum trioxide nanosheets: anenhanced catalyst with intrinsic peroxidase-like catalytic activity. Nanoscale. 2014;6:12340–12344.
  • Wongkrua P, Thongtem T, Thongtem. S. Synthesis of h- and α-MoO3 by refluxing and calcination combination: phase and morphology transformation, photocatalysis, and photosensitization. J Nanomater. Article ID 702679. 2013;2013,1-8.
  • Vijeth H, Ashokkumar SP, Yesappa L, et al. Flexible and high energy density solid-state asymmetric supercapacitor based on polythiophene nanocomposites and charcoal. RSC Adv. 2018;8:31414.
  • Shulga YM, Baskakov SA, Smirnov VA, et al. Graphene oxide films as separators of polyaniline-based supercapacitors. J Power Sources. 2014;245:33–36.
  • Rithin Kumar NB, Crasta V, Praveen BM. Advancement in microstructural, optical, and mechanical properties of PVA (Mowiol 10-98) doped by ZnO nanoparticles. Phys Res Int. Article ID 742378. 2014:9. doi:10.1155/2014/742378
  • Rajesh K, Crasta V, Rithin Kumar NB, et al. Structural, optical, mechanical and dielectric properties of titanium dioxide doped PVA/PVP nanocomposite. J Polym Res. 2019;26:99.
  • Mott NF, Devis EA. Electronic process in non-crystalline materials. 2nd ed. Oxford (UK): Oxford University Press; 1979.
  • Tauc J. Optical properties of solids. In: Abeles F, editor. Optical properties of solid. Amsterdam, The Netherlands: North-Holland; 1972. p. 277.
  • Abdullah OG, Tahir DA, Ahmad SS, et al. Optical properties of PVA : CdCl2.H2O polymer electrolytes IOSR. J Appl Phys. 2013;4(3):52–57.
  • Rithin Kumar NB, Crasta V, Praveen BM. Advancement in microstructural, optical, and mechanical properties of PVA (Mowiol 10-98) doped by ZnO nanoparticles.Physics Research International,2014,1–9.
  • Zidan HM, El-Ghamaz NA, Abdelghany AM, et al. Structural and electrical properties of PVA/pvp blend doped with methylene blue dye. Int J Electrochem Sci. 2016;11:9041–9056.
  • Balendhran S, Walia S, Alsaif M, et al. Field effect biosensing platform based on 2D α-MoO3. ACS Nano. 2013;7:9753–9760.
  • Srivastava S, Kumar S, Singh VN, et al. Synthesis and characterization of TiO2 doped polyaniline composites for hydrogen gas sensing. Int J Hydrogen Energy. 2011;36:6343–6355.
  • Kayani ZN, Shahzadi A, Riaz S, et al. Preparation and characterization of dip coated cobalt oxide thin films. Mater Res Innovations. 2019;23(5):253–259.
  • Baraker BM, Lobo B. Spectroscopic analysis of CdCl2 doped PVA–PVP blend films. Can J Phys. 2017;95(8):738–747.
  • Cuba M, Muralidharan G. Enhanced luminescence properties of hybrid Alq3/ ZnO (organic/inorganic) composite films. J Lumin. 2014;156:1–7.
  • Khan M, Khan AN, Saboor A, et al. Investigating mechanical, dielectric, and electromagnetic interference shielding properties of polymer blends and three component hybrid composites based on polyvinyl alcohol, polyaniline, and few layer graphene. Polym Composites. 2017. DOI:10.1002/pc.24398
  • Ravati S, Favis BD. Low percolation threshold conductive device derived from a five-component polymer blend. polymer. 2010;51:3669–3684.
  • Mao C, Zhu Y, Jiang W. Design of electrical conductive composites: tuning the morphology to improve the electrical properties of graphene filled immiscible polymer blends. ACS Appl Mater Interfaces. 2012;4:5281.
  • Zhu L. Exploring strategies for high dielectric constant and low loss polymer dielectrics. J Phys Chem Lett. 2014;5:3677–3687.
  • Mahendia S, Tomar AK, Kumar S. Nano-Ag doping induced changes in optical and electrical behaviour of PVA films. Mater Sci Eng B. 2011;176:530.
  • Rithin Kumar NB, Crasta V, Praveen BM. Dielectric and electric conductivity studies of PVA (Mowiol 10-98) doped with MWCNTs and WO3 nanocomposites films. Mater Res Express. 2016;3:055012.
  • El Hasnaoui M, Graça MPF, Achour ME, et al. Effect of temperature on the electrical properties of copolymer/carbon black mixtures. J Non-Crystalline Solids. 2010;356:1536–1541.
  • Mahendia S, Tomara AK, Kumara S. Electrical conductivity and dielectric spectroscopic studies of PVA–Ag nanocomposite films. J Alloys Compd. 2010;508:406–411.
  • Phang SW, Tadokoro M, Watanabe J, et al. Synthesis, characterization and microwave absorption property of doped polyaniline nanocomposites containing TiO2 nanoparticles and carbon nanotubes. Synth Met. 2008;158:251–258.
  • Compton CO, Cranford WS, Putz WK, et al. Tuning the mechanical properties of graphene oxide paper and its associated polymer nanocomposites by controlling cooperative intersheet hydrogen bonding. ACS Nano. 2012;6(3):2008–2019.
  • He Y, Zhang N, Gong Q, et al. Alginate/graphene oxide fibers with enhanced mechanical strength prepared by wet spinning. Carbohydr Polym. 2012;88:1100–1108.
  • Raveesha PM, Nabhiraj PY, Menon R, et al. Influence of low-energy Argon ions on thermal and surface properties of polycarbonate films. Radiat Eff Defects Solids. 2017;172:485–493.
  • Ramesan MT, Athira VK, Jayakrishnan P. Preparation, characterization, electrical and antibacterial properties of sericin/poly(vinyl alcohol)/poly(vinyl pyrrolidone) composites. J Appl Polym Sci. 2016;133. DOI:10.1002/APP.43535
  • Sheela T, Bhajantri RF, Nambissan PMG, et al. Ionic conductivity and free volume related micro structural properties of LiClO4/PVA/NaAlg polymer composites: Positron annihilation spectroscopic studies. J Non-Cryst Solids. 2016;454:19–30.
  • Szubzda B, Szmaja A, Ozimek M, et al. Polymer membranes as separators for supercapacitors. Appl Phys A. 2014;117:1801–1809.
  • Kausar A. Applications of polymer/graphene nanocomposite membranes: a review. Mater Res Innovations. 2019;23(5):276–287.

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