Xie Yuliang, Ahmed Daniel, Lapsley Michael Ian, Lu Mengqian, Li Sixing, Huang Tony Jun
1Department of Chemical Engineering, The Pennsylvania State University, University Park, PA, USA.
J Lab Autom. 2014 Apr;19(2):137-43. doi: 10.1177/2211068213485748. Epub 2013 Apr 16.
We report an on-chip acoustofluidic method for sequential trapping and transporting of microparticles via acoustically oscillating bubbles. The size and location of bubbles were precisely controlled by lithography. When the acoustic waves were turned off, particles followed the streamlines dictated by laminar flow. When the acoustic waves were turned on, particles were attracted to and trapped in a vortex near the surface of bubble. Therefore, particles could move across the microfluidic channel with programmed trajectories. Additionally, a theoretical model based on acoustic radiation force and drag force due to acoustic microstreaming was established to help design this particle-trapping and -transporting system.
我们报道了一种基于芯片的声流体方法,用于通过声波振荡气泡对微粒进行顺序捕获和运输。气泡的大小和位置通过光刻技术精确控制。当声波关闭时,微粒遵循层流所决定的流线。当声波开启时,微粒被吸引并捕获在气泡表面附近的涡旋中。因此,微粒能够以编程的轨迹穿过微流体通道。此外,还建立了一个基于声辐射力和声学微流引起的阻力的理论模型,以帮助设计这种微粒捕获和运输系统。