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Production and Application of High-Accuracy Polymer-Based Magnetically Driven Microtool

机译:高精度聚合物基磁驱动微型工具的生产与应用

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摘要

We discuss a novel magnetically driven polymeric microtool for non-intrusive and non-contaminating experiments on a chip. The composite is formed by suspending magnetite particles (Fe{sub}3O{sub}4) in poly-dimethylsiloxane (PDMS). To obtain precise, complex patterns from magnetically driven microtools, photolithography has been applied taking advantage of thick KMPR-1050 photoresist as a sacrificed mold. The microtool surface was coated to suppress stic-tion in the biochip. These microtools feature 1. fabrication of any shape, 2. softness (harmless to cells), 3. no stiction, and 4. mass production at low cost enabling disposability. We demonstrate versatile mass-produced magnetically driven microtools such as stirrers and valves. The potential impact of this technology includes sample selection and separation, cell immobilization, mixing and reaction into portable microfluidic labs-on-a-chip, and long-term culture and cell loading.
机译:我们讨论了一种用于芯片上的非侵入性和无污染实验的新型磁驱动聚合物微型工具。通过将磁铁矿颗粒(Fe {sub} 3O {sub} 4)悬浮在聚二甲基硅氧烷(PDMS)中来形成复合材料。为了从磁力驱动的微型工具中获得精确,复杂的图案,利用厚KMPR-1050光致抗蚀剂作为牺牲模具,应用了光刻技术。涂覆微型工具表面以抑制生物芯片中的粘连。这些微型工具具有以下特点:1.可以制造任何形状; 2.柔软(对电池无害); 3.无附着力; 4.低成本批量生产,可一次性使用。我们展示了通用的大量生产的磁力驱动微型工具,例如搅拌器和阀门。这项技术的潜在影响包括样品选择和分离,细胞固定,混合和反应进入便携式微流体芯片实验室以及长期培养和细胞上样。

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