» Articles » PMID: 37374780

Effect of CuO Nanoparticles on the Optical, Structural, and Electrical Properties in the PMMA/PVDF Nanocomposite

Overview
Publisher MDPI
Date 2023 Jun 28
PMID 37374780
Authors
Affiliations
Soon will be listed here.
Abstract

A polymeric nanocomposite film, composed of PMMA/PVDF and different amounts of CuO NPs, was successfully prepared using the casting method to enhance its electrical conductivity. Various techniques were employed to investigate their physicochemical properties. The addition of CuO NPs causes a noticeable difference in the intensities and locations of vibrational peaks in all bands, confirming the incorporation of CuO NPs inside the PVDF/PMMA. In addition, the broadening of the peak at 2θ = 20.6° becomes more intense with increasing amounts of CuO NPs, confirming the increase in the amorphous characteristic of PMMA/PVDF incorporated with CuO NPs in comparison with PMMA/PVDF. Furthermore, the image of the polymeric structure exhibits a smoother shape and interconnection of pore structure associated with spherical particles that agglomerate and give rise to a web-like organization that becomes a matrix. Increasing surface roughness is responsible for an increasing surface area. Moreover, the addition of CuO NPs in the PMMA/PVDF leads to a decrease in the energy band gap, and further increasing the additional amounts of CuO NPs causes the generation of localized states between the valence and conduction bands. Furthermore, the dielectric investigation shows an increase in the dielectric constant, dielectric loss, and electric conductivity, which may be an indication of an increase in the degree of disorder that confines the movement of charge carriers and demonstrates the creation of an interconnected percolating chain, enhancing its conductivity values compared with that without the incorporation of a matrix.

Citing Articles

Zinc metal complexes synthesized by a green method as a new approach to alter the structural and optical characteristics of PVA: new field for polymer composite fabrication with controlled optical band gap.

Muhammad D, Aziz D, Aziz S RSC Adv. 2024; 14(36):26362-26387.

PMID: 39165793 PMC: 11333999. DOI: 10.1039/d4ra04228j.


Understanding the Effects of Adding Metal Oxides to Polylactic Acid and Polylactic Acid Blends on Mechanical and Rheological Behaviour, Wettability, and Photo-Oxidation Resistance.

Morici E, Pecoraro G, Carroccio S, Bruno E, Scarfato P, Filippone G Polymers (Basel). 2024; 16(7).

PMID: 38611180 PMC: 11013447. DOI: 10.3390/polym16070922.

References
1.
Thangamani J, Pasha S . Hydrothermal synthesis of copper (׀׀) oxide-nanoparticles with highly enhanced BTEX gas sensing performance using chemiresistive sensor. Chemosphere. 2021; 277:130237. DOI: 10.1016/j.chemosphere.2021.130237. View

2.
Aziz S . Morphological and Optical Characteristics of Chitosan:Cu (4 ≤ x ≤ 12) Based Polymer Nano-Composites: Optical Dielectric Loss as an Alternative Method for Tauc's Model. Nanomaterials (Basel). 2017; 7(12). PMC: 5746934. DOI: 10.3390/nano7120444. View

3.
Daems N, Milis S, Verbeke R, Szymczyk A, Pescarmona P, Vankelecom I . High-performance membranes with full pH-stability. RSC Adv. 2022; 8(16):8813-8827. PMC: 9082047. DOI: 10.1039/c7ra13663c. View

4.
Muller K, Bugnicourt E, Latorre M, Jorda M, Echegoyen Sanz Y, Lagaron J . Review on the Processing and Properties of Polymer Nanocomposites and Nanocoatings and Their Applications in the Packaging, Automotive and Solar Energy Fields. Nanomaterials (Basel). 2017; 7(4). PMC: 5408166. DOI: 10.3390/nano7040074. View

5.
Darwish M, Mostafa M, Al-Harbi L . Polymeric Nanocomposites for Environmental and Industrial Applications. Int J Mol Sci. 2022; 23(3). PMC: 8835668. DOI: 10.3390/ijms23031023. View