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压电微流控法制备可编程的 Knot 微纤维

Programmable Knot Microfibers from Piezoelectric Microfluidics.

机构信息

Department of Clinical Laboratory, The Affiliated Drum Tower Hospital of Nanjing University Medical School, Nanjing, 210008, China.

Shanghai Xuhui Central Hospital, Zhongshan-Xuhui Hospital and the Shanghai Key Laboratory of Medical Epigenetics the International Co-laboratory of Medical Epigenetics, and Metabolism (Ministry of Science and Technology) Institutes of Biomedical Sciences, Fudan University, Shanghai, 200032, China.

出版信息

Small. 2022 Feb;18(5):e2104309. doi: 10.1002/smll.202104309. Epub 2021 Nov 25.

Abstract

Microfibers have demonstrated significant application values in a large number of areas. Current efforts focus on developing new technologies to prepare microfibers with controllable morphological and structural features to enhance their functions. Here, a piezoelectric microfluidic platform is presented for consecutive spinning of functional microfibers with programmable spindle-knots. In this platform, a jet of a pregel-solution flowing in the channel can be subjected to a programmable piezoelectric signal and vibrates synchronously. Following a rapid polymerization of the wavy jet, microfibers with corresponding morphologies can be generated, including uniform, gradient, and symmetrical knots. Such a unique knot structure contributes to a water-collection mechanism. Thus, it has been observed that microfibers with programmed knots enable even more flexible droplet handling and active water transport. In addition, by constructing higher-order knot fiber networks, practical applications including spray reaction, lab-on-a-chip vapor detection, etc., can also be demonstrated. it is believed that this platform opens a new avenue for fiber spinning, and the programmable microfibers would be highly applicable in chemical, biomedical, and environmental areas.

摘要

微纤维在大量领域展示出了显著的应用价值。目前的研究重点在于开发新技术,制备具有可控形态和结构特征的微纤维,以增强其功能。在这里,我们提出了一种压电微流控平台,用于连续纺制具有可编程纺锤结的功能微纤维。在该平台中,通道中流动的预凝胶溶液射流可以施加可编程的压电信号,并进行同步振动。在快速聚合波状射流之后,可以生成具有相应形态的微纤维,包括均匀、梯度和对称的结。这种独特的结结构有助于实现集水机制。因此,人们观察到具有可编程结的微纤维能够实现更灵活的液滴处理和主动水传输。此外,通过构建高阶结纤维网络,还可以展示喷雾反应、芯片上蒸汽检测等实际应用。相信该平台为纤维纺丝开辟了新途径,可编程微纤维在化学、生物医学和环境领域具有广泛的应用前景。

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