4.6 Article

Green Electrospun Membranes Based on Chitosan/Amino-Functionalized Nanoclay Composite Fibers for Cationic Dye Removal: Synthesis and Kinetic Studies

Journal

ACS OMEGA
Volume 6, Issue 16, Pages 10816-10827

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsomega.1c00480

Keywords

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Funding

  1. Natural Science and Engineering Reserach Council of Canada [NSERC RGPIN-2016-04690]
  2. Iran's National Elites Foundation
  3. Iran National Science Foundation
  4. Iran National Science Foundation (INSF) [95-S-48740, 96016364]
  5. Sharif University of Technology [QA970816]

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Incorporating amino-functionalized montmorillonite nanoparticles into chitosan/poly(vinyl alcohol) nanofibers enhances adsorption capacity, thermal stability, and compression resistance, leading to efficient removal of cationic dyes. The nanocomposite membranes with 2 wt% nanofiller exhibit the highest and fastest dye removal rate, surpassing the pristine membranes by at least 20%. Additionally, the adsorption kinetics follow a pseudo-second-order mechanism according to the Langmuir isotherm model, demonstrating a spontaneous chemisorption process.
Chitosan/poly(vinyl alcohol)/amino-functionalized montmorillonite nanocomposite electrospun membranes with enhanced adsorption capacity and thermomechanical properties were fabricated and utilized for the removal of a model cationic dye (Basic Blue 41). Effects of nanofiller concentrations (up to 3.0 wt %) on the morphology and size of the nanofibers as well as the porosity and thermomechanical properties of the nanocomposite membranes are studied. It is shown that the incorporation of the nanoclay particles with similar to 10 nm lateral sizes into the polymer increases the size of the pores by about 80%. To demonstrate the efficiency of the adsorbents, the dye removal rate is investigated as a function of pH, adsorbent dosage, dye concentration, and nanofiller loading. The highest and fastest dye removal occurs for the nanofibrous membranes containing 2 wt % nanofiller, where about 80% of the cationic dye is removed after 15 min. This performance is at least 20% better than the pristine chitosan/poly(vinyl alcohol) membrane. The thermal stability and compression resistance of the nanocomposite membranes are found to be higher than those of the pristine membrane. In addition, reusability studies show that the dye removal performance of this nanocomposite membrane reduces by only about 5% over four cycles. The adsorption kinetics is explained by the Langmuir isotherm model and is expressed by a pseudo-second-order kinetic mechanism that determines a spontaneous chemisorption process. The results of this study provide a valuable perspective on the fabrication of high-performance, reusable, and efficient electrospun fibrous nanocomposite adsorbents.

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