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Fabrication and Application of 3-D Magnetically Driven Microtools

机译:3-D磁驱动微型工具的制作与应用

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摘要

In this paper, we describe a novel method of fabricating polymeric 3-D magnetically driven microtools (MMTs) for performing nonintrusive and contamination-free experiments on chips. In order to obtain precise and complicated 3-D patterns from magnetically driven 3-D microtools, a grayscale photolithography technique was applied by making good use of a thick negative photoresist as a sacrifice mold. By controlling the amount of ultraviolet light with a gradation of gray-tone mask, we fabricated a smoothly curved (100-¿ m gap) object without steps, which tend to appear in the case of conventional layer-by-layer photolithography techniques. A wide range of on-chip applications of microactuators can be realized by using the softness of the polymer-based 3-D MMT. For example, a microfilter and a microloader were successfully operated by a combination of magnetic and fluidic forces. The finite element method analysis of flow showed that a rotation of the 3-D MMT produces a relatively strong downward axial flow, which prevents particles from stagnating on the surface of the MMT. The produced 3-D MMT can be applied to complex on-chip manipulations of sensitive materials such as cells.
机译:在本文中,我们描述了一种新颖的制造聚合物3-D磁性微型工具(MMT)的方法,该工具可在芯片上执行非侵入式且无污染的实验。为了从磁性驱动的3-D微型工具中获得精确而复杂的3-D图案,通过充分利用厚的负性光刻胶作为牺牲模具来应用灰度光刻技术。通过使用灰度级灰度蒙版控制紫外线的数量,我们制作了没有台阶的平滑弯曲(100-μm间隙)的物体,在常规层的情况下,这种现象容易出现。逐层光刻技术。通过使用基于聚合物的3-D MMT的柔软性,可以实现微执行器在芯片上的广泛应用。例如,通过磁力和流体力的组合成功地操作了微型过滤器和微型装载器。流动的有限元方法分析表明,3-D MMT的旋转会产生相对较强的向下轴向流动,从而防止颗粒停滞在MMT的表面上。产生的3-D MMT可应用于敏感材料(例如细胞)的复杂片上操作。

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