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High-fidelity replication of thermoplastic microneedles with open microfluidic channels

机译:具有开放微流体通道的热塑性微针的高保真复制

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摘要

Development of microneedles for unskilled and painless collection of blood or drug delivery addresses the quality of healthcare through early intervention at point-of-care. Microneedles with submicron to millimeter features have been fabricated from materials such as metals, silicon, and polymers by subtractive machining or etching. However, to date, large-scale manufacture of hollow microneedles has been limited by the cost and complexity of microfabrication techniques. This paper reports a novel manufacturing method that may overcome the complexity of hollow microneedle fabrication. Prototype microneedles with open microfluidic channels are fabricated by laser stereolithography. Thermoplastic replicas are manufactured from these templates by soft-embossing with high fidelity at submicron resolution. The manufacturing advantages are (a) direct printing from computer-aided design (CAD) drawing without the constraints imposed by subtractive machining or etching processes, (b) high-fidelity replication of prototype geometries with multiple reuses of elastomeric molds, (c) shorter manufacturing time compared to three-dimensional stereolithography, and (d) integration of microneedles with open-channel microfluidics. Future work will address development of open-channel microfluidics for drug delivery, fluid sampling and analysis.
机译:用于非熟练和无痛采集血液或药物输送的微针的开发通过在护理点进行早期干预来提高医疗质量。具有亚微米到毫米特征的微针是通过减法加工或蚀刻由诸如金属,硅和聚合物之类的材料制成的。然而,迄今为止,中空微针的大规模生产受到微加工技术的成本和复杂性的限制。本文报道了一种新颖的制造方法,可以克服中空微针制造的复杂性。具有开放的微流体通道的原型微针是通过激光立体光刻技术制造的。由这些模板通过以亚微米分辨率高保真度进行软压花来制造热塑性仿品。制造优势是(a)从计算机辅助设计(CAD)图直接打印而不受减法加工或蚀刻工艺施加的限制;(b)高保真度复制原型几何形状,并多次重复使用弹性体模具;(c)较短与三维立体平版印刷相比,制造时间更短;(d)将微针与开放通道微流控技术集成在一起。未来的工作将致力于开发用于药物输送,流体采样和分析的明渠微流体技术。

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