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利用双共流几何结构在微流控芯片上制备藻酸盐水凝胶

Microfluidic On-Chip Production of Alginate Hydrogels Using Double Coflow Geometry.

作者信息

Sattari Amirmohammad, Janfaza Sajjad, Mashhadi Keshtiban Mohsen, Tasnim Nishat, Hanafizadeh Pedram, Hoorfar Mina

机构信息

School of Mechanical Engineering, College of Engineering, University of Tehran, Tehran 16589-53571, Iran.

School of Engineering, University of British Columbia, Kelowna, BC V1V 1V7, Canada.

出版信息

ACS Omega. 2021 Sep 30;6(40):25964-25971. doi: 10.1021/acsomega.1c02728. eCollection 2021 Oct 12.

Abstract

Microfluidic on-chip production of microgels employing external gelation has numerous biological and pharmaceutical applications, particularly for the encapsulation of delicate cargos; however, the on-chip production of microgels in microfluidic devices can be challenging due to problems such as clogging caused by accelerated progress in precursor solution viscosity. Here, we introduce a novel microfluidic design incorporating two consecutive coflow geometries for microfluidic droplet generation. A shielding oil phase is employed to avoid emulsification and gelation stages from occurring simultaneously, thereby preventing clogging. The results revealed that the microfluidic device could generate highly monodispersed spherical droplets (coefficient of variation < 3%) with an average diameter in the range of 60-200 μm. Additionally, it was demonstrated that the device could appropriately create a shelter of the oil phase around the inner aqueous phase regardless of the droplet formation regime and flow conditions. The ability of the proposed microfluidic device in the generation of microgels was validated by producing alginate microgels utilizing an aqueous solution of calcium chloride as the continuous phase.

摘要

采用外部凝胶化的微流体芯片上微凝胶生产具有众多生物和制药应用,特别是用于封装易碎货物;然而,由于前体溶液粘度加速上升导致堵塞等问题,微流体装置中微凝胶的芯片上生产可能具有挑战性。在此,我们介绍一种新颖的微流体设计,该设计包含两个连续的用于微流体液滴生成的共流几何结构。采用屏蔽油相来避免乳化和凝胶化阶段同时发生,从而防止堵塞。结果表明,该微流体装置能够产生高度单分散的球形液滴(变异系数<3%),平均直径在60 - 200μm范围内。此外,结果表明,无论液滴形成方式和流动条件如何,该装置都能在内水相周围适当地形成油相屏蔽。通过使用氯化钙水溶液作为连续相生产藻酸盐微凝胶,验证了所提出的微流体装置生成微凝胶的能力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a88f/8515369/8b73b4f9f82a/ao1c02728_0002.jpg

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