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首页> 外文期刊>Journal of Colloid and Interface Science >Development of microfluidization methods for efficient production of concentrated nanoemulsions: Comparison of single- and dual-channel microfluidizers
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Development of microfluidization methods for efficient production of concentrated nanoemulsions: Comparison of single- and dual-channel microfluidizers

机译:开发有效生产浓缩纳米乳剂的微流化方法:单通道和双通道微流化剂的比较

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摘要

Nanoemulsions are being increasingly utilized within the pharmaceutical, food, personal care, and chemical industries because of their unique physicochemical properties and functional performances: high optical clarity; prolonged stability; enhanced bioavailability; and novel rheology. For commercial applications, it is important to be able to produce nanoemulsions containing small droplets using efficient homogenization processes. In this study, we compared two microfluidization methods for fabricating nanoemulsions: (i) single-channel microfluidization and (ii) dual-channel microfluidization. The influence of emulsifier concentration, homogenization pressure, disperse phase volume fraction, and initial emulsifier location (oil versus water phase) on particle size was examined. For both devices, the mean particle diameter decreased with increasing emulsifier concentration and homogenization pressure, and there was a linear log log relationship between mean particle diameter and homogenization pressure. At a similar emulsifier level and homogenization pressure, dual-channel microfluidization produced smaller droplets and narrower distributions than single-channel microfluidization. This effect was attributed to a higher droplet disruption efficiency and/or lower droplet recoalescence rate for the dual channel system. The dual-channel method could successfully produce nanoemulsions even at high oil concentrations (50%), whereas the single-channel method was only effective at producing nanoemulsions at relatively low oil concentrations (10%). This study demonstrates that dual-channel microfluidization is an efficient means of producing fine nanoemulsions with high oil loading levels, which may be advantageous for many commercial applications. (C) 2015 Elsevier Inc. All rights reserved.
机译:纳米乳液因其独特的理化性质和功能性能而在制药,食品,个人护理和化学工业中得到越来越多的利用。长期稳定;生物利用度提高;和新颖的流变学。对于商业应用,重要的是能够使用有效的均质化方法生产包含小液滴的纳米乳液。在这项研究中,我们比较了两种制备纳米乳液的微流化方法:(i)单通道微流化和(ii)双通道微流化。检查了乳化剂浓度,均质压力,分散相体积分数和乳化剂初始位置(油对水相)对粒度的影响。对于两种装置,平均粒径均随着乳化剂浓度和均质压力的增加而减小,并且平均粒径与均质压力之间存在线性对数-对数关系。在相似的乳化剂水平和均质压力下,双通道微流化比单通道微流化产生的液滴更小,分布更窄。该效果归因于双通道系统较高的液滴破坏效率和/或较低的液滴重凝率。即使在高油浓度(50%)下,双通道方法也可以成功地生产纳米乳液,而单通道方法仅在相对低油浓度(10%)下才能有效地生产纳米乳液。这项研究表明,双通道微流化是生产具有高含油量的精细纳米乳液的有效方法,这对于许多商业应用而言可能是有利的。 (C)2015 Elsevier Inc.保留所有权利。

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