Zhao Jingjing, You Zheng
State Key Laboratory of Precision Measurement Technology and Instrument, Tsinghua University, Beijing 100084, China.
Department of Precision Instrument, Tsinghua University, Beijing 100084, China.
Sensors (Basel). 2016 Sep 11;16(9):1474. doi: 10.3390/s16091474.
This work develops a microflow cytometer, based on a microfluidic chip for three-dimensional (3D) hydrodynamic focusing and a binary optical element (BOE) for shaping and homogenizing a laser beam. The microfluidic chip utilizes sheath flows to confine the sample flow along the channel centerline with a narrow cross section. In addition to hydrodynamic focusing, secondary flows are generated to strengthen the focusing in the vertical direction. In experiments, the chip was able to focus the sample flow with cross sections of 15 μm high and 8-30 μm wide at 5 m/s, under the condition of the sample flow rates between 10 and 120 μL/min. Instead of using the conventional elliptical Gaussian spot for optical detection, we used a specially designed BOE and obtained a 50 μm × 10 μm rectangular quasi-flat-top spot. The microflow cytometer combining the chip and the BOE was tested to count 3, 5, and 7 μm fluorescence microbeads, and the experimental results were comparable to or better than those derived from two commercial instruments.
这项工作基于用于三维(3D)流体动力聚焦的微流控芯片和用于整形及均匀化激光束的二元光学元件(BOE),开发了一种微流控细胞仪。该微流控芯片利用鞘流将样品流沿具有狭窄横截面的通道中心线进行限制。除了流体动力聚焦外,还会产生二次流以增强垂直方向上的聚焦。在实验中,该芯片能够在样品流速介于10至120μL/分钟的条件下,以5米/秒的速度聚焦高度为15μm且宽度为8至30μm的样品流横截面。我们没有使用传统的椭圆形高斯光斑进行光学检测,而是使用了专门设计的BOE,并获得了一个50μm×10μm的矩形准平顶光斑。对结合了该芯片和BOE的微流控细胞仪进行了测试,以对3μm、5μm和7μm的荧光微珠进行计数,实验结果与两台商用仪器得出的结果相当或更好。