Smart nanocomposites: Harnessing magnetically recoverable MWCNT-CF for efficient organic dyes reduction in water quality monitoring applications

Author:

Thombare Balu R.1ORCID,Daware Krishna D.1,Khupse Nagesh2,Dusane Pravin R.13ORCID,Lole Gaurav S.4,Khedkar Chaitali V.1,Badgujar Prashant S.1,Bankar Prashant K.1ORCID,Patil Shankar I.1

Affiliation:

1. Centre for Advanced Studies in Material Science and Condensed Matter Physics, Department of Physics, Savitribai Phule Pune University (Formerly University of Pune) 1 , Pune 411008, India

2. Centre for Materials for Electronic Technology 2 , Dr. Homi Bhabha Road, Panchawati, Pune 411008, India

3. Department of Physics, Abasaheb Garware College 3 , Karve Road, Pune 411004, India

4. Institute of Materials Physics, University of Goettingen 4 , Friedrich-Hund-Platz 1, 37077 Goettingen, Germany

Abstract

The accelerating use of organic dyes in various industries has led to a surge in water pollution, especially from non-biodegradable dye effluents discharged into water resources. This study addresses the critical issue of catalyzing the reduction of two prevalent dyes, methylene blue (MB) and rhodamine-B (RhB), using a multiwalled carbon nanotube-cobalt ferrite (MWCNT-CF) nanocomposite. The synthesized nanocomposite demonstrates exceptional catalytic activity, stability, and recyclability. Conventional methods for treating dye-containing wastewater often prove expensive. This study explores the efficacy of catalytic reduction, a relatively fast process facilitated by semiconductor nanoparticles. Structural analyses using X-ray diffraction and high-resolution transmission electron microscopy (HRTEM) confirm the formation of the nanocomposite, revealing unsaturated surface bonds and chains conducive to adsorption. The nanocomposite exhibits a remarkable reduction in both dyes, with easy recyclability for multiple cycles. Magnetization studies confirm the ferrimagnetic nature of the nanocomposite, facilitating its efficient separation from the reaction mixture using a magnet. The study delves into the kinetics of the catalytic reduction following pseudo-first-order kinetics. The surface modifications of the nanocomposite, as revealed by TEM, contribute to enhanced adsorption and catalytic efficiency. Notably, the MWCNT-CF nanocomposite demonstrates negligible loss of catalytic activity during recycling, highlighting its potential for cost-effective and sustainable applications in dye reduction across various industries.

Funder

Human Resource Development Center, Council of Scientific and Industrial Research

Chhatrapati Shahu Maharaj Research Training and Human Development Institute

Publisher

AIP Publishing

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