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Journal articles on the topic 'SnS2 NANOFILLER'

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1

Beelagi, Darshana Upadhye, N. C. Horti, and M. D. Kamatagi. "Photoluminescence Properties of Polythiophene/Tin Oxide (PTh/SnO2) Polymer Nanocomposites." Journal of Physics: Conference Series 2603, no. 1 (2023): 012001. http://dx.doi.org/10.1088/1742-6596/2603/1/012001.

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Abstract In the present work, we have synthesized, polythiophene/tin oxide (PTh/SnO2) polymer nanocomposites through an in-situ chemical polymerization of thiophene monomers using anhydrous FeCl3 as an oxidant. The structural, thermal and optical characterization of PTh/SnO2 nanocomposites were investigated using X-ray diffraction, field emission scanning electron microscopy, thermogravimetric analyzer and fluorescence emission spectroscopy. XRD spectra show the formation of pure polythiophene and incorporation of SnO2 nanofiller into the polythiophene matrix. FESEM images depict the formation
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2

Sai Prasanna, CM, and S. Austin Suthanthiraraj. "Improved zinc ion transportation in gel polymer electrolyte upon the addition of nano-sized SnO2." Polymers and Polymer Composites 28, no. 1 (2019): 54–65. http://dx.doi.org/10.1177/0967391119858558.

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Nanocomposite gel polymer electrolytes (NCGPEs) consisting of Zn(OTf)2 salt solution in 1-ethyl-3-methylimidazolium bis(trifluoromethylsulfonyl)imide ionic liquid (EMIMTFSI), entrapped in poly(vinyl chloride) (PVC)/poly(ethyl methacrylate) (PEMA) matrices, and dispersed with different concentrations of tin oxide (SnO2) nanofiller were prepared by simple solution casting method. The free-standing film of the composite gel polymer electrolyte (GPE) exhibited an optimum ionic conductivity value of 4.92 × 10−4 Scm−1 at ambient temperature. The gel composites developed predominant amorphous phase a
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3

Dhatarwal, Priyanka, Shobhna Choudhary, and R. J. Sengwa. "Effectively nanofiller concentration tunable dielectric properties of PVP/SnO2 nanodielectrics." Materials Letters 273 (August 2020): 127913. http://dx.doi.org/10.1016/j.matlet.2020.127913.

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4

Ayeleru, Olusola Olaitan, Sisanda Dlova, Freeman Ntuli, Williams Kehinde Kupolati, and Peter Apata Olubambi. "Synthesis and characterization of SnO2 nanofiller from recycled expanded polystyrene." Procedia Manufacturing 30 (2019): 635–41. http://dx.doi.org/10.1016/j.promfg.2019.02.089.

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5

Bhute, Monali V., Subhash B. Kondawar, and Pankaj Koinkar. "Fabrication of hybrid gel nanofibrous polymer electrolyte for lithium ion battery." International Journal of Modern Physics B 32, no. 19 (2018): 1840066. http://dx.doi.org/10.1142/s0217979218400660.

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Fibrous membranes are promising separators for high-performance lithium ion battery because of their high porosity and superior electrolyte uptake. In this paper, the fabrication of hybrid gel polymer electrolyte (HGPE) by introducing SnO2 nanoparticles in poly(vinylidine fluoride) by electrospinning technique and soaking the electrospun nanofibrous membranes in 1 M LiPF6 in ethylene carbonate (EC)/diethyl carbonate (DEC) (1:1, v/v). The as-prepared electrospun HGPE with SnO2 nanofiller was characterized by scanning electron microscopy. The influence of SnO2 on the structure of polymer membran
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6

Sengwa, R. J., and Priyanka Dhatarwal. "Nanofiller concentration-dependent appreciably tailorable and multifunctional properties of (PVP/PVA)/SnO2 nanocomposites for advanced flexible device technologies." Journal of Materials Science: Materials in Electronics 32, no. 7 (2021): 9661–74. http://dx.doi.org/10.1007/s10854-021-05627-w.

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7

Dhatarwal, Priyanka, and R. J. Sengwa. "Poly(vinyl pyrrolidone) matrix and SiO2, Al2O3, SnO2, ZnO, and TiO2 nanofillers comprise biodegradable nanocomposites of controllable optical properties for optoelectronic applications." Optik 241 (September 2021): 167215. http://dx.doi.org/10.1016/j.ijleo.2021.167215.

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8

Sharma, Gagan, and Deshraj Meena. "Substantial enhancement of the electroactive phase and dielectric properties at low loading levels of SnO2/MXene nanocomposite as a novel nanofiller in the PVDF matrix." Materials Science in Semiconductor Processing 195 (August 2025): 109607. https://doi.org/10.1016/j.mssp.2025.109607.

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9

Sengwa, R. J., and Priyanka Dhatarwal. "Polymer nanocomposites comprising PMMA matrix and ZnO, SnO2, and TiO2 nanofillers: A comparative study of structural, optical, and dielectric properties for multifunctional technological applications." Optical Materials 113 (March 2021): 110837. http://dx.doi.org/10.1016/j.optmat.2021.110837.

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10

Mohamed, Mohamed Bakr, A. M. El naggar, Zein K. Heiba, and A. M. Kamal. "Impact of SnS2/Fe Nanofiller on PVA/PVP Blended Polymer: Structural, Electrical and Radiation Shielding Properties." ECS Journal of Solid State Science and Technology, February 24, 2025. https://doi.org/10.1149/2162-8777/adb98f.

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Abstract Structure and morphology of PVA/PVP/SnS2/Fe-doped blends were considered employing X-ray diffraction and scanning electron microscopy. Maximum dielectric value was attained in the PVA/PVP/1 wt % SnS2/Fe blended polymers. Relaxation time was affected by the amount of filler. Energy density and AC conductivity were improved as the blend loaded with 5 wt % SnS2/Fe. Radiation parameters for all blends were explored using the Phy-X/PSD program. All blends exhibited relatively elevated MAC values at lower energy, specifically 15 keV. MAC diminished to 0.095 cm²/g for all blends when energy
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11

Harshvardhan, Palkin Yadav, and Bharti Singh. "Systematic investigation of the effect of SnS2 nanofiller content on the piezoelectric performance of the PVDF-TrFE-based nanogenerator." Materials Today: Proceedings, June 2023. http://dx.doi.org/10.1016/j.matpr.2023.05.607.

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12

Yousaf, M., and M. Junaid Iqbal Khan. "Theoretical and experimental study of electronic, structural and optical properties of PVDF-SnO2:Zr nanocomposites for novel optoelectronic applications." Physica Scripta, August 2, 2024. http://dx.doi.org/10.1088/1402-4896/ad6aa7.

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Abstract Current research elaborates theoretical and experimental investigations on SnO2:Zr added PVDF nanocomposites. The electronic and optical properties of Zr doped SnO2 are studied using the Wien2k code. After obtaining a good optical response of SnO2 at various Zr concentrations, thin films of PVDF-SnO2:Zr nanocomposites are prepared using the co-precipitation method. SEM analysis of SnO2:Zr reveals agglomerated nanoparticles with hollow regions, while nanofiller added PVDF shows acicular smooth morphology, which improves the photoresponse of materials. EDX predicts the correct elemental
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13

Abdel‐Kader, Mohamed H., Abdel‐Aleam H. Mohamed, Jamal Qernas M. Almarashi, Ali A. Alhazime, and Mohamed Bakr Mohamed. "Investigation of structure and optical characteristics of irradiated PVP/CMC nanocomposite films based on ZnS/SnO2 nanofillers." Journal of Vinyl and Additive Technology, September 19, 2023. http://dx.doi.org/10.1002/vnl.22039.

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AbstractPVP/CMC/50%ZnS‐50%SnO2 blends were formed by solid state reaction, sol‐gel methods and casting technique. The structure and the crystallite size of the nanofillers (ZnS and SnO2) were examined using x‐ray diffraction technique (XRD). The effect of laser irradiation energies compared to the proportions of loaded nanofillers on the films internal structure and morphology was studied using XRD. The high miscibility among blends has been confirmed through Fourier transform infrared spectroscopy (FTIR). The energy dispersive x‐ray spectroscopy (EDS) analysis proved the presence of the nanoc
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14

"Effect of SiO2–SnO2 Nanofiller on the Characteristics of Biopolymer Blend and Its Application as Gamma-Ray Shielding." Nanosistemi, Nanomateriali, Nanotehnologii 22, no. 2 (2024). http://dx.doi.org/10.15407/nnn.22.02.367.

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15

Abdel-Kader, Mohamed H., Ali A. Alhazime, and Mohamed Bakr Mohamed. "Tailoring the optical properties (linear and nonlinear) of triple blended polymers via reinforcement of interchangeable proportions of mixed (SnO2 and NiO) nanofillers for promising applications." Optical and Quantum Electronics 55, no. 11 (2023). http://dx.doi.org/10.1007/s11082-023-05266-x.

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