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使用聚焦超声穿过具有跳跃可用性的疏水网孔的微流体平台。

Microfluidic platform using focused ultrasound passing through hydrophobic meshes with jump availability.

作者信息

Koroyasu Yusuke, Nguyen Thanh-Vinh, Sasaguri Shun, Marzo Asier, Ezcurdia Iñigo, Nagata Yuuya, Yamamoto Tatsuya, Nomura Nobuhiko, Hoshi Takayuki, Ochiai Yoichi, Fushimi Tatsuki

机构信息

School of Informatics, College of Media Arts, Science and Technology, University of Tsukuba, Tsukuba, 305-8550 Ibaraki, Japan.

Graduate School of Comprehensive Human Sciences, University of Tsukuba, Tsukuba, 305-8550 Ibaraki, Japan.

出版信息

PNAS Nexus. 2023 Jun 19;2(7):pgad207. doi: 10.1093/pnasnexus/pgad207. eCollection 2023 Jul.

Abstract

Applications in chemistry, biology, medicine, and engineering require the large-scale manipulation of a wide range of chemicals, samples, and specimens. To achieve maximum efficiency, parallel control of microlitre droplets using automated techniques is essential. Electrowetting-on-dielectric (EWOD), which manipulates droplets using the imbalance of wetting on a substrate, is the most widely employed method. However, EWOD is limited in its capability to make droplets detach from the substrate (jumping), which hinders throughput and device integration. Here, we propose a novel microfluidic system based on focused ultrasound passing through a hydrophobic mesh with droplets resting on top. A phased array dynamically creates foci to manipulate droplets of up to 300 L. This platform offers a jump height of up to 10 cm, a 27-fold improvement over conventional EWOD systems. In addition, droplets can be merged or split by pushing them against a hydrophobic knife. We demonstrate Suzuki-Miyaura cross-coupling using our platform, showing its potential for a wide range of chemical experiments. Biofouling in our system was lower than in conventional EWOD, demonstrating its high suitability for biological experiments. Focused ultrasound allows the manipulation of both solid and liquid targets. Our platform provides a foundation for the advancement of micro-robotics, additive manufacturing, and laboratory automation.

摘要

在化学、生物学、医学和工程领域的应用需要对各种化学品、样品和标本进行大规模操作。为了实现最高效率,使用自动化技术对微升液滴进行并行控制至关重要。基于介电层上电润湿(EWOD)原理,利用基板上润湿性的不平衡来操控液滴,这是目前应用最广泛的方法。然而,EWOD在使液滴从基板上脱离(跳跃)的能力方面存在局限,这阻碍了通量和设备集成。在此,我们提出一种新型微流体系统,该系统基于聚焦超声穿过顶部放置有液滴的疏水网。相控阵动态地产生焦点以操控体积达300微升的液滴。这个平台提供了高达10厘米的跳跃高度,比传统的EWOD系统提高了27倍。此外,通过将液滴推向疏水刀片,可以实现液滴的合并或分裂。我们展示了使用我们的平台进行铃木-宫浦交叉偶联反应,显示出其在广泛化学实验中的潜力。我们系统中的生物污染低于传统的EWOD,证明了其在生物实验中的高度适用性。聚焦超声能够操控固体和液体目标。我们的平台为微机器人技术、增材制造和实验室自动化的发展奠定了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3e8c/10317206/2c26d3fb0117/pgad207f1.jpg

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