旋转(数学)
微流控
材料科学
振动
压电
电压
声学
转速
微观结构
炸薯条
微电子机械系统
光电子学
纳米技术
物理
电气工程
计算机科学
复合材料
工程类
量子力学
人工智能
作者
Lin Feng,Bin Song,Deyuan Zhang,Yonggang Jiang,Fumihito Arai
出处
期刊:Micromachines
[MDPI AG]
日期:2018-11-14
卷期号:9 (11): 596-596
被引量:31
摘要
The precise rotational manipulation of cells and other micrometer-sized biological samples is critical to many applications in biology, medicine, and agriculture. We describe an acoustic-based, on-chip manipulation method that can achieve tunable cell rotation. In an acoustic field formed by the vibration of a piezoelectric transducer, acoustic streaming was generated using a specially designed, oscillating asymmetrical sidewall shape. We also studied the nature of acoustic streaming generation by numerical simulations, and our simulation results matched well with the experimental results. Trapping and rotation of diatom cells and swine oocytes were coupled using oscillating asymmetrical microstructures with different vibration modes. Finally, we investigated the relationship between the driving voltage and the speed of cell rotation, showing that the rotational rate achieved could be as large as approximately 1800 rpm. Using our device, the rotation rate can be effectively tuned on demand for single-cell studies. Our acoustofluidic cell rotation approach is simple, compact, non-contact, and biocompatible, permitting rotation irrespective of the optical, magnetic, or electrical properties of the specimen under investigation.
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