Green synthesised MnOand poly (o-phenylenediamine) for antimicrobial textile-based supercapacitor applications.

Nanotechnology

Department of Chemistry, Stella Maris College (Autonomous), University of Madras, Chennai 600 086, Tamil Nadu, India.

Published: September 2024

AI Article Synopsis

  • - The study focuses on creating wearable supercapacitors (SCs) from textile-based electrodes that are cost-effective, efficient, and capable of long use, utilizing green-synthesized manganese oxide nanoparticles combined with a polymer nanocomposite.
  • - Various characterization techniques, like UV-visible spectroscopy and scanning electron microscopy, were employed to confirm the successful integration of metal oxide nanoparticles into the polymer, while thermal properties were assessed through thermogravimetric analysis.
  • - The polymer nanocomposite demonstrated an impressive specific capacitance of 213 Fg at a current density of 1 Ag, with 89% capacitance retention after 1000 cycles, and showed enhanced antimicrobial properties, making it suitable for use in antimicrobial wearable SC devices.

Article Abstract

The advancement of wearable supercapacitors (SCs) has recently garnered a lot of attention owing to their ease of fabrication into textiles, low cost, long cycle life, fast charging and discharging, high efficiency, and ability to bridge the energy and power gap between conventional capacitors and batteries. The present study focuses on the development of wearable textile-based SC electrodes using green-synthesised manganese oxide nanoparticles functionalised on poly(o-phenylenediamine) reinforced to a polymer nanocomposite. The prepared nanocomposite was characterized using spectroscopic techniques such as UV-visible spectroscopy, Fourier transform infrared spectroscopy, x-ray diffraction studies, and scanning electron microscopy to validate the incorporation of metal oxide nanoparticles into the polymer matrix. The thermal properties were studied using thermogravimetric analysis and differential scanning calorimetry. The electrochemical performance of the bare polymer and the nanocomposite was evaluated using cyclic voltammetry, galvanostatic charge-discharge, and impedance spectroscopy techniques. An impressive specific capacitance of 213 Fgwas achieved at a current density of 1 Agfor the polymer nanocomposite and even after 1000 cycles a capacitance retention of 89% was observed. Enhanced antimicrobial activity was also observed for the nanocomposite against both gram-negative and gram-positive bacteria. Based on these attributes, the fabricated device can be used as an efficient antimicrobial wearable SC.

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Source
http://dx.doi.org/10.1088/1361-6528/ad773bDOI Listing

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