Modified eco‐friendly and biodegradable chitosan‐based sustainable semiconducting thin films

Author:

Lokesh Kumar S.1,Servesh Anushka1,Sunitha V. R.2,Prasad J. Raj3,Tabassum Sumaiya4,Ramaraj Sankar Ganesh56ORCID,Kumar Niraj7,Govindaraju Santhosh2

Affiliation:

1. Department of Chemistry Christ University Bengaluru India

2. Department of Sciences and Humanities Christ University Bengaluru India

3. Department of Civil Engineering College of Engineering and Technology, SRM Institute of science and Technology Tamil Nadu India

4. Department of Chemistry Surana College Bengaluru India

5. Department of Materials Physics Saveetha School of Engineering, Saveetha Institute of Medical and Technical Sciences (SIMTS) Chennai Tamil Nadu India

6. Department of Bioengineering Graduate School of Engineering, The University of Tokyo Tokyo Japan

7. Department of Electronics & Communication Engineering Graphic Era Deemed to be University Dehradun Uttarakhand India

Abstract

AbstractSemiconducting materials are pivotal in various fields, such as solar cells, LEDs, photovoltaic cells, etc. A nature‐friendly chitosan is a good film‐forming, water‐soluble polymer that is modified to a small band‐gap polymer for various optoelectronic applications. Choline chloride:ethylene glycol:glycerin (1:1:1) deep eutectic solvent (DES)‐modified activated carbon is incorporated into the chitosan matric and this composite is fabricated into thin films via spin coating methodology. The obtained films are subjected to multiple studies such as scanning electron microscopy (SEM), X‐ray diffraction (XRD), Fourier transform infrared spectroscopy (FTIR), impedance spectroscopy, and UV–vis spectroscopy to perceive the thin‐films microstructure, morphology, conductance, band gap, and optical nature. The integration of DES‐modified activated carbon has significantly improved the charge transfer capacity of chitosan by reducing the band gap from 4.0 to 2.0 eV. These notable characteristics exhibited by the modified films can be key to sustainable semiconducting materials and have the potential to transform several optoelectronic applications.

Publisher

Wiley

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