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Versatile microfluidic flow generated by moulded magnetic artificial cilia

机译:模制磁性人工纤毛产生的多功能微流

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Magnetic artificial cilia (MAC) are flexible hair-like micro-actuators inspired by biological cilia. When integrated in a microfluidic device and actuated by an external (electro-)magnet, MAC can generate fluid flows. Our MAC are made of a composite material of polydimethylsiloxane (PDMS) and magnetic microparticles (Carbonyl iron powder). In this paper, we demonstrate a fabrication process based on micro-moulding to manufacture MAC, in which we can vary the magnetic particle distribution within the cilia from (1) a random distribution, to (2) a linearly aligned distribution to (3) a concentrated distribution in the tips of the cilia. Magnetization measurements show that the aligned distribution leads to a substantial increase of magnetic susceptibility, which dramatically enhances their response to an applied magnetic field. When integrated in a microfluidic channel, the improved MAC can induce versatile flows, for example (i) circulatory fluid flows with flow speeds up to 250 μm/s which is substantially above the performance of most of the previously developed artificial cilia, (ii) direction-reversible flows, (iii) oscillating flows, and (iv) pulsatile flows, by changing the magnetic actuation mode. Compared to other pumping methods, this on-chip/in-situ micro-pump requires no tubing or electric connections, reducing the usage of reagents by minimizing “dead volumes”, avoiding undesirable electrical effects, and accommodating a wide range of different fluids. These results demonstrate that our MAC can be used as versatile integrated micropump in microfluidic devices, with great potential for future lab-on-a-chip applications.
机译:磁性人造纤毛(MAC)是受生物纤毛启发的柔软的头发状微致动器。当集成在微流体设备中并由外部(电磁)磁铁驱动时,MAC可以产生流体流。我们的MAC由聚二甲基硅氧烷(PDMS)和磁性微粒(羰基铁粉)的复合材料制成。在本文中,我们演示了一种基于微模制造MAC的制造工艺,其中我们可以改变纤毛内的磁性粒子分布,从(1)随机分布到(2)线性排列分布到(3)在纤毛的尖端集中分布。磁化测量表明,对齐的分布会导致磁化率显着提高,从而显着增强其对施加磁场的响应。当集成到微流体通道中时,改进的MAC可以引起多种流动,例如(i)循环流体的流动速度高达250μm/ s,大大高于大多数以前开发的人造纤毛的性能,(ii)通过更改磁致动模式来实现方向可逆的流动,(iii)振荡流和(iv)脉动流。与其他泵送方法相比,这种片上/原位微型泵不需要管道或电连接,通过最小化“死体积”来减少试剂的使用,避免了不良的电效应,并可以容纳各种不同的流体。这些结果表明,我们的MAC可以用作微流体设备中的通用集成微型泵,对于将来的片上实验室应用具有巨大的潜力。

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