Controlled preparation of droplets, particles and capsules by microfluidics and their applications

被引:0
|
作者
Ji X. [1 ,2 ]
Zheng Y. [3 ]
Li X. [1 ,2 ]
Yang Z. [1 ,2 ]
Zhang W. [4 ]
Qiu S. [4 ]
Zhang Q. [1 ,2 ]
Luo C. [3 ]
Sun D. [3 ]
Chen D. [3 ]
Li D. [1 ,2 ]
机构
[1] Cigar Fermentation Technology Key Laboratory of China Tobacco, China Tobacco Sichuan Industrial Co., Ltd., Sichuan, Chengdu
[2] Industrial Efficient Utilization of Domestic Cigar Tobacco Key Laboratory of Sichuan Province, China Tobacco Sichuan Industrial Co.,Ltd., Sichuan, Chengdu
[3] College of Energy Engineering, Zhejiang University, Zhejiang, Hangzhou
[4] The Greatwall Cigar Factory, China Tobacco Sichuan Industrial Co., Ltd., Sichuan, Shifang
来源
Huagong Xuebao/CIESC Journal | 2024年 / 75卷 / 04期
关键词
capsule; droplet; microchannel; microfluidics; numerical simulation; parallel scale-up; particle;
D O I
10.11949/0438-1157.20231328
中图分类号
学科分类号
摘要
Microfluidics has unique advantages in the controlled preparation of droplets, particles and capsules. Microfluidics could precisely control the size, distribution, structure and composition of droplets, particles and capsules, which are widely used in the field of biomedicine, food and cosmetics. This review comprehensively summarizes the device design, preparation strategy and industrial application for the controlled preparation of droplets, particles and capsules by microfluidics. In addition, the application of multiphase flow numerical simulation of the preparation process of droplets, particles and capsules and the optimization of experimental parameters are also highlighted, as well as the parallel scale-up strategy of microfluidic devices to achieve mass production of droplets, particles and capsules. This review will provide an important guide for the preparation and application of droplets, particles and capsules. © 2024 Materials China. All rights reserved.
引用
收藏
页码:1455 / 1468
页数:13
相关论文
共 89 条
  • [1] Sun D P, Zheng Y, Chen D., Applications of microfluidics in carbon capture, utilization and storage, Energy Environmental Protection, 37, 2, pp. 117-124, (2023)
  • [2] Lee T Y, Choi T M, Shim T S, Et al., Microfluidic production of multiple emulsions and functional microcapsules, Lab on a Chip, 16, 18, pp. 3415-3440, (2016)
  • [3] Yadavali S, Jeong H H, Lee D, Et al., Silicon and glass very large scale microfluidic droplet integration for terascale generation of polymer microparticles, Nature Communications, 9, (2018)
  • [4] Zhang S K, Luo C H, Zheng Y, Et al., Enhancements of mass transfer and heat transfer by microreactors and their applications in chemical engineering, Energy Environmental Protection, 37, 5, pp. 174-182, (2023)
  • [5] Shah R K, Shum H C, Rowat A C, Et al., Designer emulsions using microfluidics, Materials Today, 11, 4, pp. 18-27, (2008)
  • [6] Wei D, Sun J, Bolderson J, Et al., Continuous fabrication and assembly of spatial cell-laden fibers for a tissue-like construct via a photolithographic-based microfluidic chip, ACS Applied Materials & Interfaces, 9, 17, pp. 14606-14617, (2017)
  • [7] Cogun F, Yildirim E, Sahir Arikan M A., Investigation on replication of microfluidic channels by hot embossing, Materials and Manufacturing Processes, 32, 16, pp. 1838-1844, (2017)
  • [8] Zhang J, Xu W H, Xu F Y, Et al., Microfluidic droplet formation in co-flow devices fabricated by micro 3D printing, Journal of Food Engineering, 290, (2021)
  • [9] Michelon M, Leopercio B C, Carvalho M S., Microfluidic production of aqueous suspensions of gellan-based microcapsules containing hydrophobic compounds, Chemical Engineering Science, 211, (2020)
  • [10] Paquet C, Jakubek Z J, Simard B., Superparamagnetic microspheres with controlled macroporosity generated in microfluidic devices, ACS Applied Materials & Interfaces, 4, 9, pp. 4934-4941, (2012)