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Ultrasound-mediated fabrication of chickpea protein nanoparticles for stabilizing Pickering emulsions

超声 Zeta电位 皮克林乳液 制作 乳状液 纳米颗粒 热稳定性 化学工程 纳米技术 材料科学 粒径 粒度分布 化学 扫描电子显微镜 肺表面活性物质 流变学 粒子(生态学) 色谱法 荧光 超声波传感器 响应面法
作者
Bingbing Cui,Yixue Zhang,Chenyan Zhu,Ke Li,Yu Wang,Yuntao Wang,Wuchao Ma,Yanhong Bai
出处
期刊:Ultrasonics Sonochemistry [Elsevier BV]
卷期号:121: 107574-107574 被引量:7
标识
DOI:10.1016/j.ultsonch.2025.107574
摘要

This research investigated the impacts of various ultrasonic power (0, 150 W, 300 W, 450 W, 600 W) treatments on chickpea protein isolate (CPI) and their ability to stabilize Pickering emulsions. Ultrasonication initially reduced particle size before causing subsequent increase, with the smallest nanoparticles (150.13 ± 0.94 nm) achieved at 450 W, as confirmed by scanning electron microscopy. Structural characterization demonstrated that α-helix content initially increased then decreased, while β-sheet content showed the opposite trend. Similarly, absolute zeta potential values, intrinsic fluorescence intensity, and surface hydrophobicity all exhibited initial increases followed by subsequent decreases upon ultrasound treatment. At 450 W, nanoparticles improved emulsion stability, decreasing droplet size by 18.96 % and increasing absolute zeta potential to 50.53 ± 0.35 mV (p < 0.05). The emulsification activity index (26.67 ± 0.19 m2/g) and stability index (47.02 ± 1.01 min) were significantly improved (p < 0.05), along with a lower turbiscan stability index. Microscopic analysis revealed a more uniform droplet distribution and a denser interfacial protein layer in emulsions stabilized by nanoparticles treated at 450 W. Additionally, these emulsions displayed enhanced thermal and freeze-thaw stability. However, excessive ultrasonication (600 W) caused protein reaggregation, adversely affecting emulsion stability. These results indicate that moderate ultrasound treatment (450 W) effectively optimizes CPI nanoparticles properties, highlighting their potential as effective stabilizers for emulsion system in the food industry.
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