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March 22, 2026Polysaccharides1 citationsOpen Access

Dual Modification of Red Lentil Starch: Enhancing Functionality for Environmental and Pharmaceutical Applications

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APAbhijeet PuriPMPopat MohiteARAakansha Ramole

Key Points

  • The central aim is to enhance the functionality of red lentil starch through dual chemical modification for its applications in various fields.
  • Isolated native starch through salt-alkali treatment.
  • Modified starch using epichlorohydrin-mediated crosslinking followed by cationization with GTAC.
  • Employed Response Surface Methodology to optimize reaction conditions for cationization.
  • Conducted structural and functional characterization using FTIR, XRD, TGA, SEM, and zeta potential analyses.
  • Achieved a degree of substitution of 0.572 for enhanced functionality.
  • Confirmed structural modification with increased thermal stability and a positive surface charge.
  • Demonstrated effective flocculation of kaolin with transmittance of 94%.
  • Showed improved emulsion stability over 70% after 24 hours, compared to native starch's 30%.

Abstract

This study explored the dual chemical modification of starch isolated from red lentils (Lens culinaris) to develop a biodegradable polymer with enhanced functionality for multifaceted applications. Native starch was isolated via combined salt–alkali treatment and sequentially modified through epichlorohydrin-mediated crosslinking, followed by cationization using glycidyl trimethylammonium chloride (GTAC). Utilizing a Quality by Design (QbD) strategy through Response Surface Methodology (RSM), the cationization endured fine-tuning to reach an optimal degree of substitution (DS = 0.572) under foremost conditions (GTAC: 2.1 mol, NaOH: 0.09 mol, reaction time: 18 h). Structural and functional characterization using FTIR, XRD, TGA, SEM, and zeta potential analysis confirmed the successful modification, indicating enhanced thermal stability, a transition to a more amorphous structure, and a moderately positive surface charge (+7.24 mV). The dual modified cationic lentil starch (CLS) demonstrated effective flocculation of kaolin suspensions, achieving a transmittance of up to 94%. Additionally, CLS showed significantly improved emulsion stability, maintaining over 70% stability after 24 h, compared to native starch, which dropped below 30%. These results emphasize the promising potential of CLS as an eco-friendly and high-performance alternative to synthetic polymers for water treatment and stabilization of emulsion-based formulations.

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Cite This Study

Puri et al. (2026) studied this question.

synapsesocial.com/papers/69bf898bf665edcd009e9519https://doi.org/10.3390/polysaccharides7010037
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