Key Laboratory of Testing Technology for Manufacturing Process, Ministry of Education, School of Manufacture Science and Engineering, Southwest University of Science and Technology, Mianyang 621010, P. R. China.
Joint Laboratory for Extreme Conditions Matter Properties, School of Science, Southwest University of Science and Technology, Mianyang 621010, P. R. China.
ACS Appl Mater Interfaces. 2021 Mar 31;13(12):14741-14751. doi: 10.1021/acsami.1c01494. Epub 2021 Mar 16.
Droplet manipulation is of paramount significance for microfluidics-based biochips, especially for bioanalytical chips. Despite great progresses made on droplet manipulation, the existing bioanalytical methods face challenges in terms of capturing minute doses toward hard-to-obtain samples and analyzing biological samples at low temperatures immediately. To circumvent these limitations, a self-propelled and electric stimuli synergetic droplet manipulator (SES-SDM) was developed by a femtosecond laser microfabrication strategy followed by post-treatment. Combining the inspiration from cactus and pitcher plants, the wedge structure with the microbowl array and silicone oil infusion was endowed cooperatively with the SES-SDM. With the synergy of the ultralow voltage (4.0 V) stimuli, these bioinspired features enable the SES-SDM to transport the droplet spontaneously and controllably, showing the maximum fast motion (15.7 mm/s) and long distance (96.2 mm). Remarkably, the SES-SDM can function at -5 °C without the freezing of the droplets, where the self-propelled motion and electric-responsive pinning can realize the accurate capture and real-time analysis of the microdroplets of the tested samples. More importantly, the SES-SDM can realize real-time diagnosis of excessive heavy metal in water by the cooperation of self-propulsion and electro-brake. This work opens an avenue to design a microsampling (5-20 μL) manipulator toward producing the minute samples for efficient bioanalysis and offers a strategy for microanalysis using the synergistic droplet manipulation.
液滴操控对于基于微流控的生物芯片至关重要,特别是对于生物分析芯片。尽管在液滴操控方面已经取得了很大的进展,但现有的生物分析方法在捕捉微量样本和在低温下立即分析生物样本方面仍面临挑战。为了克服这些限制,我们通过飞秒激光微加工策略和后处理开发了一种自推进和电刺激协同的液滴操纵器(SES-SDM)。受仙人掌和猪笼草的启发,楔形结构与微碗阵列和硅油注入协同赋予 SES-SDM。在超低电压(4.0 V)刺激的协同作用下,这些仿生特征使 SES-SDM能够自发且可控地输送液滴,显示出最大的快速运动(15.7 mm/s)和长距离(96.2 mm)。值得注意的是,SES-SDM 可以在-5°C 下工作而不会使液滴冻结,在这种情况下,自推进运动和电响应固定可以实现对测试样品微液滴的精确捕获和实时分析。更重要的是,SES-SDM 可以通过自推进和电制动的协同作用实现对水中过量重金属的实时诊断。这项工作为设计用于产生高效生物分析所需微量样本的微采样(5-20 μL)操纵器开辟了一条途径,并为协同液滴操控的微分析提供了一种策略。