Enhancement of Dielectric Response and Optical Bandgap Tuning with Improving Surface Morphology of Recyclable Polyvinyl Alcohol–CeO2 Polymer Nanocomposites

Author:

Arya Jyoti12,Leel Narendra S.2,Aakansha 1,Quraishi Abdul Mosawir3,Hashmi Sonia Zeba4,Kumar Shalendra5,Choudhary Banwari Lal1,Dalela Saurabh2,Hasan Zafrul6,Singh Jasgurpreet7,Alvi Parvez A.1ORCID

Affiliation:

1. Department of Physical Science Banasthali Vidyapith Banasthali Rajasthan 304022 India

2. Department of Pure & Applied Physics University of Kota Kota Rajasthan 324005 India

3. Department of Electrical Engineering College of Engineering Qassim University Unaizah Saudi Arabia

4. Department of Chemistry Banasthali Vidyapith Banasthali Rajasthan 304022 India

5. Department of Physics University of Petroleum and Energy Studies Dehradun Uttarakhand 248007 India

6. Department of Applied Physics, F/o Engineering & Technology Aligarh Muslim University Aligarh Uttar Pradesh 202002 India

7. University Centre for Research & Development Department of Mechanical Engineering Chandigarh University Gharuan Punjab India

Abstract

Motivated from the extraordinary properties of CeO2 nanomaterial, this article is directed toward the synthesis of recyclable polyvinyl alcohol–CeO2 polymer nanocomposite with variable wt% of CeO2 and investigating their improvements in structural, electrical, optical, and surface properties. The crystalline size and micro‐strain are measured using X‐ray diffraction (XRD) data. Ultraviolet–visible–near‐infrared spectrophotometer is used to study the optical characteristics. Absorbance with redshift is found to enhance; while optical bandgap is reduced from 2.51 to 2.36 eV on increasing wt% of CeO2 nanofiller. The mechanism of reduction in bandgap is supported by the XRD analysis. Refractive index is found to vary from 2.54 to 2.59 and the range of Urbach energy varies from 1.19 to 0.42 eV on increasing the amount of nanofillers. Surface morphology, dielectric constant, and electrical conductivity are also found to improve with increasing wt% of nanofiller. The dielectric constant is improved from 60 to 120 at 1.5 Hz. The rise in conductivity with increasing wt% of CeO2 and rising frequency is due to the enhancement of mobility of the charge carriers and ionic hopping mechanism in conduction process. Characterization outcomes suggest that the prepared composites can be claimed as useful in fabricating the flexible optoelectronic devices.

Publisher

Wiley

Subject

Materials Chemistry,Electrical and Electronic Engineering,Surfaces, Coatings and Films,Surfaces and Interfaces,Condensed Matter Physics,Electronic, Optical and Magnetic Materials

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