Scalable processing parameters to fabricate silicon elastomer microparticles using a blade-free planetary mixer with a thixotropic medium

IF 4.7 3区 材料科学 Q2 CHEMISTRY, PHYSICAL Colloid and Interface Science Communications Pub Date : 2023-11-01 DOI:10.1016/j.colcom.2023.100756
Jeongwook Ko , Han-Bok Seo , Jihee Lee, Sang Yup Kim, Seung-Yop Lee
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Abstract

The development of biomedical devices and soft robotics has spurred the utilization of silicone elastomers. Converting these polymers into particulates is increasingly important for their application to advanced materials and processes. However, the highly viscous nature of silicone resins, resulting from their long polymer chains, makes it challenging to fabricate them as particulates. Recently, a blade-free planetary mixer has been used to effectively emulsify viscous resins in a thixotropic medium. However, the particle fabrication process has not yet been examined to gain full control over the produced microparticles. This study presents key processing parameters for the fabrication of silicone elastomer microparticles in a sodium alginate medium using a blade-free planetary mixer. The experimental results show that stirring speed, stirring time, and medium concentration are the determining factors for controlling the particle size distribution. The variation in particle size by parameters exhibits differences depending on the viscous-to-elastic transition of the medium.

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可扩展的工艺参数,以制造硅弹性体微粒使用无叶片的行星混合器与触变介质
生物医学设备和软机器人技术的发展促进了有机硅弹性体的应用。将这些聚合物转化为颗粒对于它们在先进材料和工艺中的应用越来越重要。然而,硅树脂的高粘性,由于其长聚合物链,使得制造它们作为颗粒具有挑战性。最近,一种无叶片的行星混合器被用于在触变介质中有效乳化粘性树脂。然而,颗粒制造过程尚未被检查,以获得完全控制所产生的微粒。本研究提出了在海藻酸钠介质中使用无叶片行星混合器制备有机硅弹性体微粒的关键工艺参数。实验结果表明,搅拌速度、搅拌时间和介质浓度是控制颗粒粒度分布的决定因素。由参数引起的颗粒大小的变化取决于介质的粘弹性转变。
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来源期刊
Colloid and Interface Science Communications
Colloid and Interface Science Communications Materials Science-Materials Chemistry
CiteScore
9.40
自引率
6.70%
发文量
125
审稿时长
43 days
期刊介绍: Colloid and Interface Science Communications provides a forum for the highest visibility and rapid publication of short initial reports on new fundamental concepts, research findings, and topical applications at the forefront of the increasingly interdisciplinary area of colloid and interface science.
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