Tang Qiang, Song Chengcheng, Wang Yan, Zhang Jia-Han, Liu Manfei, Xu Yunshan, Wang Chengjun, Cui Xiaxia
Base for Innovative Methods Promotion Application and Demonstration of Anhui Province, Anhui University of Science and Technology, Huainan 232000, Anhui, China.
School of Artificial Intelligence, Anhui University of Science and Technology, Huainan 232000, Anhui, China.
Langmuir. 2024 Jun 11;40(23):11966-11973. doi: 10.1021/acs.langmuir.4c00403. Epub 2024 May 29.
In printing, microreactors, and bioassays, the precise control of micrometer-scale droplet generation is essential but challenging, often restricted by the equipment and nozzles used in traditional methods. We introduce a needle-plate electrode corona discharge technique that injects charges into an oil layer, enabling the precise manipulation of droplet polarization and splitting. This method allows for meticulous adjustment of microdroplet formation regarding location, size, and quantity by modulating the discharge voltage, discharge time, and electrode positioning. It enables the immediate initiation and cessation of droplet production, thereby facilitating on-demand droplet generation. Our study on the voltage-dependent droplet stretch coefficient shows that as the voltage increases, the droplets transition from controlled splitting to regular Taylor cone-like ejections, eventually reaching the Rayleigh limit and fully breaking apart. These advancements significantly improve microfluidic droplet manipulation, offering considerable benefits for applications in targeted drug delivery, rapid disease diagnostics, and precise environmental monitoring.
在印刷、微反应器和生物测定中,精确控制微米级液滴的产生至关重要但具有挑战性,这通常受到传统方法中使用的设备和喷嘴的限制。我们引入了一种针板电极电晕放电技术,该技术将电荷注入油层,从而能够精确操纵液滴的极化和分裂。通过调节放电电压、放电时间和电极位置,这种方法可以对微滴的形成位置、大小和数量进行精细调整。它能够立即启动和停止液滴产生,从而实现按需产生液滴。我们对电压依赖性液滴拉伸系数的研究表明,随着电压增加,液滴从可控分裂转变为规则的泰勒锥状喷射,最终达到瑞利极限并完全破碎。这些进展显著改善了微流体液滴操纵,为靶向药物递送、快速疾病诊断和精确环境监测等应用带来了诸多益处。