Lai Xiaochen, Sun Yanfei, Yang Mingpeng, Wu Hao
School of Automation, Nanjing University of Information Science & Technology, Nanjing 210044, China.
Jiangsu Collaborative Innovation Center of Atmospheric Environment and Equipment Technology (CICAEET), Nanjing University of Information Science & Technology, Nanjing 210044, China.
Micromachines (Basel). 2022 Nov 24;13(12):2054. doi: 10.3390/mi13122054.
Microfluidics technology plays an important role in modern analytical instruments, while the modular design of microfluidics facilitates the reconfiguration of analytical instrument functions, making it possible to deploy on-demand systems in the field. However, modular design also faces the challenges such as connection reliability and reconfiguration convenience. Inspired by the self-locking structure of the Rubik's cube, a modular, reconfigurable microfluidic instrument architecture is proposed in this paper. The system has a self-locking structure of Rubik's cube components and an O-ring-based alignment and sealing mechanism, which enables reliable interconnection and rapid rearrangement of microfluidic modules by simply rotating the faces of the microfluidic cube. In addition, the system is capable of integrating a variety of customized modules to perform analysis tasks. A proof-of-concept application of detecting multiple pollutants in water is demonstrated to show the reconfigurable characteristics of the system. The findings of this paper provide a new idea for the design of microfluidic analytical instrument architectures.
微流控技术在现代分析仪器中发挥着重要作用,而微流控的模块化设计有助于分析仪器功能的重新配置,使得在现场部署按需定制系统成为可能。然而,模块化设计也面临着诸如连接可靠性和重新配置便利性等挑战。受魔方自锁结构的启发,本文提出了一种模块化、可重新配置的微流控仪器架构。该系统具有魔方组件的自锁结构和基于O形环的对准与密封机制,通过简单旋转微流控立方体的面,能够实现微流控模块的可靠互连和快速重新排列。此外,该系统能够集成各种定制模块以执行分析任务。通过检测水中多种污染物的概念验证应用,展示了该系统的可重新配置特性。本文的研究结果为微流控分析仪器架构的设计提供了新思路。