Comparative evaluation of stability and interfacial characteristics of Pickering emulsions co-stabilized by zein and hydrocolloids: Role of charge profile, emulsifying ability, and rheological properties

流变学 皮克林乳液 化学工程 材料科学 化学 纳米技术 复合材料 纳米颗粒 工程类
作者
Parham Joolaei Ahranjani,Andrea Polo,Raffaella Di Cagno,Giovanna Ferrentino
出处
期刊:Food Research International [Elsevier BV]
卷期号:218: 116948-116948 被引量:4
标识
DOI:10.1016/j.foodres.2025.116948
摘要

This study provides the first systematic investigation of guar gum (GG) alongside xanthan gum (XG) and gum arabic (GA) in zein nanoparticle (ZNP)-stabilized Pickering emulsions, highlighting the critical role of each hydrocolloid's charge profile. While previous research has largely addressed single polysaccharide-protein systems, the interfacial behavior and functional implications of combining ZNPs with hydrocolloids of different ionic character remain underexplored. Specifically, XG imparted strong negative charges (-65.5 mV) due to its high anionic density, GA moderately shifted the charge (approximately -28 mV), and GG, being largely non-ionic, remained near neutral. Fourier-transform infrared spectroscopy and ζ-potential measurements suggest that XG stabilizes emulsions primarily through electrostatic interactions and hydrogen bonding, GA provides moderate interfacial activity via amphiphilic adsorption and weak electrostatic interactions, while GG, being non-ionic, enhances emulsion stability through steric exclusion and bulk-phase viscosity enhancement. However, given the indirect nature of these findings, the potential role of bulk-phase stabilization was not excluded. Confocal laser scanning microscopy and scanning electron microscopy confirmed the formation of dense interfacial layers in all emulsions. Among the samples, XG-based emulsions exhibited smaller droplets (15.5-17 μm) and higher storage moduli, resulting in robust gel-like networks. Under varying environmental stresses (pH 2-11, ionic strength 0-500 mM, and temperatures up to 80 °C), XG-emulsions displayed minimal droplet growth, demonstrating exceptional resilience. GA-stabilized emulsions exhibited intermediate droplet sizes (∼22 ± 2 μm) and FTIR shifts indicative of partial interaction with zein suggesting a moderately stabilizing interfacial contribution, while GG-based emulsions showed droplet sizes within 12.8-29 μm, reflecting the dominant steric stabilization. Overall, this work highlights the importance of the selection of hydrocolloids to tailor emulsion functionality. These findings offer insights for designing stable, high-performance Pickering emulsions for food and pharmaceutical applications.
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