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Dr. Heba Abdel Mohsen Ghazal :: Publications:

Title:
Sustainable Dyeing of Cotton and Polyester Fabrics Using Agricultural Waste-Derived Carboxymethyl Cellulose and Natural Colorants: Optimization, Performance Evaluation, and Functional Finishing
Authors: Merehan N. Elshamy a, Heba Ghazal a, and Ahmed G. Hassabo
Year: 2026
Keywords: Not Available
Journal: Egyptian Journal of Chemistry
Volume: Not Available
Issue: Not Available
Pages: Not Available
Publisher: Not Available
Local/International: International
Paper Link: Not Available
Full paper Heba Abdel Mohsen Ghazal_EJCHEM-Volume 69-Issue 13- Page 45-79.pdf
Supplementary materials Not Available
Abstract:

This study introduces a sustainable and multifunctional textile dyeing approach using carboxymethyl cellulose (CMC) syn thesized from agricultural waste—peanut shell and rice straw—in combination with natural dyes extracted from peanut red skin (PRS), red onion peel (ROP), and henna (HE). Cotton and polyester fabrics were pre-treated with CMC (0.5–1.5%) and crosslinked to enhance dye–fiber interactions, followed by dyeing under various controlled conditions. The influence of key parameters, including pH, temperature, dyeing time, and polymer concentration, was systematically investigated to optimize color uptake and fixation behavior. Results showed that rice-straw-derived CMC, owing to its higher degree of substitution and superior film-forming characteristics, produced significantly higher color strength (K/S) values than peanut-shell CMC on both textile substrates. Optimal dyeing was achieved at pH 5–7, 70–80 °C, and 60–90 min, yielding uniformly dyed fabrics with excellent washing (4–5), rubbing (3–5), and light fastness (3–5). The treated fabrics also exhibited remarkable functional enhancements, including improved tensile properties, ultraviolet protection (UPF 40–50), and substantial antimi crobial activity (up to 91% reduction against E. coli, S. aureus, and C. albicans). Henna and PRS extracts were most effective in imparting bioactive performance, while CMC significantly enhanced dye retention and surface reactivity. The proposed mechanism suggests that coloration results from synergistic hydrogen bonding, polymer entrapment, and crosslink-stabilized dye–polymer–fiber networks. Overall, this work demonstrates an eco-friendly, circular, and high-performance natural dyeing technology that transforms agricultural residues into value-added biopolymers and functional pigments suitable for sustain able textile finishing.

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