Ji Qinglei, Zhang Jia Ming, Liu Ying, Li Xiying, Lv Pengyu, Jin Dongping, Duan Huiling
State Key Laboratory of Mechanics and Control of Mechanical Structures, Nanjing University of Aeronautics and Astronautics, 29 Yudao Street, Nanjing, 210016, Jiangsu, People's Republic of China.
State Key Laboratory for Turbulence and Complex Systems, Department of Mechanics and Engineering Science, BIC-ESAT, College of Engineering, Peking University, Beijing, 100871, People's Republic of China.
Sci Rep. 2018 Mar 19;8(1):4791. doi: 10.1038/s41598-018-22756-1.
3D-printing (3DP) technology has been developing rapidly. However, limited studies on the contribution of 3DP technology, especially multimaterial 3DP technology, to droplet-microfluidics have been reported. In this paper, multimaterial 3D-printed devices for the pneumatic control of emulsion generation have been reported. A 3D coaxial flexible channel with other rigid structures has been designed and printed monolithically. Numerical and experimental studies have demonstrated that this flexible channel can be excited by the air pressure and then deform in a controllable way, which can provide the active control of droplet generation. Furthermore, a novel modular microfluidic device for double emulsion generation has been designed and fabricated, which consists of three modules: function module, T-junction module, and co-flow module. The function module can be replaced by (1) Single-inlet module, (2) Pneumatic Control Unit (PCU) module and (3) Dual-inlet module. Different modules can be easily assembled for different double emulsion production. By using the PCU module, double emulsions with different number of inner droplets have been successfully produced without complicated operation of flow rates of different phases. By using single and dual inlet module, various double emulsions with different number of encapsulated droplets or encapsulated droplets with different compositions have been successfully produced, respectively.
3D打印(3DP)技术发展迅速。然而,关于3DP技术,尤其是多材料3DP技术对微滴微流控技术贡献的研究报道有限。本文报道了用于乳液生成气动控制的多材料3D打印装置。设计并整体打印了一种带有其他刚性结构的3D同轴柔性通道。数值和实验研究表明,该柔性通道可被气压激发并以可控方式变形,从而实现对微滴生成的主动控制。此外,还设计并制造了一种用于双乳液生成的新型模块化微流控装置,它由三个模块组成:功能模块、T型接头模块和共流模块。功能模块可被(1)单入口模块、(2)气动控制单元(PCU)模块和(3)双入口模块替换。不同模块可轻松组装以用于不同的双乳液生产。通过使用PCU模块,成功制备了具有不同内相微滴数量的双乳液,而无需对不同相的流速进行复杂操作。通过使用单入口和双入口模块,分别成功制备了具有不同包裹微滴数量或不同组成包裹微滴的各种双乳液。