Future Prospects of Polymer Dielectric Nano-Composite & its Applications

Authors

  • Mahesh Dhaigude Ramsheth Thakur College of Commerce and Science, Kharghar, Maharashtra, India
  • Rupali Nagarekar Ramsheth Thakur College of Commerce and Science, Kharghar, Maharashtra, India
  • Rajshree Mhatre Ramsheth Thakur College of Commerce and Science, Kharghar, Maharashtra, India
  • Prathmesh Thakur Ramsheth Thakur College of Commerce and Science, Kharghar, Maharashtra, India

DOI:

https://doi.org/10.5281/zenodo.17291794

Keywords:

polymer, nano-composite, dielectric

Abstract

Polymer Nanocomposites are polymers in which small amounts of nanometer-size fillers have been mixed either by chemical mixing or physical mixing. Nanotechnology is used in many different fields as it gives us many advantages in miniaturization techniques in all fields (instruments). Nano-materials are more effective fillers for the preparation of polymer composites because of their surface properties and high aspect ratio. By integrating two or more Nano-materials with different properties, polymer composites improve performance [1-4].

Because of their robust mechanical properties and high surface-to-volume ratio, nano-composites can be used in a wide range of industries. Compared to traditional composites, nano-composites provide superior performance enhancement in terms of electrical, thermal, and superior mechanical characteristics and barriers. The capacity of a dielectric polymer to sustain an electrostatic field is a crucial characteristic. The remarkable electrical, mechanical, and thermal capabilities of polymer dielectric nanocomposites have drawn a lot of interest recently [5-8].

This review paper is based on earlier research and expects the future scope of practical knowledge. The present work aimed to design various Nano-composite materials that will be guidelines for the scientific and technological communities. The work will also emphasize various devices for characterization techniques with mechanical, optical & dielectric Properties using XRD, SEM, TEM, AFM, FTIR, XPS (ESCA), DSC, TGA, DTA, etc.

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References

K. Deshmukh, M. Basheer Ahamed, R.R. Deshmukh, S.K. Khadheer Pasha, P.R. Bhagat, & K. Chidambaram. Biopolymer composites with high dielectric performance. Interface Engineering Book Chapter 3, p. 51.

Ajit Behara. (2022). Advanced materials. Springer Science & Business Media LLC.

Carbon-based nanomaterials & their properties. (2022). Springer Science & Business Media LLC.

X. Huang, & P Li. (2021). Thermally conductive polymer composites for high voltage insulation. in 22nd International Symposium on High voltage Engineering (ISH).

S Sabir. (2018). Polymer based nanocomposites for significantly enhanced dielectric properties & energy storage capacity. Elsevier.

Sh. Ammar, K. Ramesh , I.A.W. Ma, Z. Farah, B. Vengadaesvaran, S. Ramesh, & A.K. Arof. (2017). Studies on SiO2-hybrid polymeric nanocomposite coatings with superior corrosion protection & hydrophobicity. Surface & Coatings Technology, 324, 536-545.

Christian Okafor, & Sunday Iwerioar, et al. (2023). Intelligent modelling of carbonized wood silicon dioxide filled natural rubber composite for outer shoe sole manufacturing. International Journal of Lightweight & Manufacture.

Xingyi Huang, & Bin Sun, et al. (2019). High K polymer nanocomposites with 1 D filler for dielectric & energy storage applications. Progress in Material Science.

Essentials in nanoscience & nanotechnology. Progress in Material Science.

Core shell structured high K polymer nanocomposites for energy storage & Diele12ctric Applications. Advanced Materials.

Shah Mohammad. (2018). Dielectric polymers. Springer Science & Business Media, LLC.

Dielectric nanomaterials for power energy storage – Surface modification & characterization. ACS Applied Nanomaterials.

Ajay Vasudev Rane, Krishnan Kenny, VK Abitha, & Sabu Thomas. (2018). Methods for synthesis for nanoparticles & fabrication of nano composites.

D. C. Tiwari, & Pukhrambam Dipak. (2018). PPy/TiO2 (np)/CNT polymer nanocomposite material for microwave absorption. J Mater Sci: Mater Electron, 29, 1643–1650.

X.W. Wang, et al. (2018). Colossal dielectric properties in (Ta0.5Al0.5)xTi1xO2 ceramics. Available at: https://www.sciencedirect.com/science/article/abs/pii/S0925838818306042

Neda Habibi. (2014). Preparation of biocompatible magnetite-carboxymethyl cellulose nanocomposite: Characterization of nanocomposite by FTIR, XRD, FESEM & TEM. Available at: https://www.sciencedirect.com/science/article/abs/pii/S138614251400612X

Yanbin Wang, Wenjing Jie, Chao Yang, Xianhua Wei, & Jianhua Hao. (2019). Colossal permittivity materials as superior dielectrics for diverse applications. Available at: https://advanced.onlinelibrary.wiley.com/doi/abs/10.1002/adfm.201808118

Wen Dong, Wanbiao Hu, Terry J. Frankcombe, Dehong Chen, & Chao Zhou, et al. (2017). Colossal permittivity with ultralow dielectric loss in In + Ta co-doped rutile TiO2†. J. Mater. Chem. A, 5.

William J. Orts, Justin Shey, Syed H. Imam, Gregory M. Glenn, & Mara E. Guttman. (2005). Application of cellulose microfibrils in polymer nano-composites. Journal of Polymers and the Environment, 13(4).

Suelen C.M.C., Tullio Ronilson, V. Barbosa, & David R. Chalcrafta. (2018). Physical and chemical characterization of natural and modified nanoclays and their ecotoxicity on a freshwater algae species (Chlamydomonas reinhardtii). Environmental Toxicology Chemistry, 37(11) 2860–2870.

P. Krishnamurthy, D. Pinjari, A. Pandit, & S. Mhaske. (2010). Phase transformation of nanostructured titanium dioxide from anatase-to-rutile, via combined ultrasound assisted sol–gel technique. Ultrasonics Sonochemistry, 17, 409–415.

K. Pandiyaraj, V. Selvarajan, R. Deshmukh, & C. Gao. (2009). Adhesive properties of polypropylene (PP) and polyethylene terephthalate (PET) film surfaces treated by DC glow discharge plasma. Available at: https://www.sciencedirect.com/science/article/abs/pii/S0042207X0800359X

R. Thirumdas, A. Trimukhe, R. Deshmukhb, & U.Annapurea. (2017). Functional and rheological properties of cold plasma treated rice starch. Available at: https://www.sciencedirect.com/science/article/abs/pii/S0144861716313248

D.V. Godovsky. (2000). Device applications of polymer nano-composites.

J. Njuguna, K. Pielichowski, & S. Desai. (2008). Nanofiller-reinforced polymer Nano-composites. Polymers for Advanced Technologies, 19, 947–959.

Daniel Q. Tan. (2020). The search for enhanced dielectric strength of polymer based dielectric – A focused based review on polymer nanocomposites.

Haiwei Du. (2016). Colossal permittivity in percolative ceramic/metal dielectric composites. Available at: https://www.sciencedirect.com/science/article/abs/pii/S0925838815319629

R. Chandrakant, Holkar, Ananda J. Jadhav, Dipak V. Pinjari, et al. (2016). A critical review on textile wastewater treatments: Possible approaches. Available at: https://www.sciencedirect.com/science/article/abs/pii/S0301479716305266

N. Sahooa, S. Rana, Jae Whan Cho, Lin Li, & Siew Hwa Chana. (2010). Polymer nano-composites based on functionalized carbon nanotubes.

J. Sebald, S. Krohns, & P. Lunkenheimer, et al. (2010). Loid colossal dielectric constants: A common phenomenon in CaCu3Ti4O12 related materials. Solid State Communications, 150, 857–860.

Published

2025-09-30
CITATION
DOI: 10.5281/zenodo.17291794
Published: 2025-09-30

How to Cite

Dhaigude, M., Nagarekar, R., Mhatre, R., & Thakur, P. (2025). Future Prospects of Polymer Dielectric Nano-Composite & its Applications. Applied Science and Biotechnology Journal for Advanced Research, 4(5), 16–21. https://doi.org/10.5281/zenodo.17291794