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From batch to continuous manufacturing of microbiomedical and microanalytical devices

机译:从批量生产到连续生产的微生物医学和微分析设备

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Abstract: We demonstrate how manufacture of miniaturized biosensors, fluidic platforms, drug delivery systems and other micro biomedical devices is relying more and more on non-Si micromanufacturing techniques. The new methodologies are hybrid in nature and merge IC fabrication methods (e.g. lithography) with more traditional manufacturing (e.g. lamination, plastic molding and electroplating). These proposed methods may involve large sheets of materials or may even be continuous, i.e., the number of devices that can be produced per single substrate is larger than that of a Si batch. The techniques are also modular rather than integrated and involve methods such as lamination, drop delivery, pick and place, laser drilling and cutting and other methods borrowed from the IC packaging and PC board industries. These new processes will afford for the first time miniaturized sensors, fluidics and other micro- biomedical devices at a cost that will enable them to become pervasive in our daily lives. The greater modularity in combining different components and the wider choice of materials with the required properties (e.g. biocompatibility, toughness, and optical transparency) will further accelerate the advent of many more innovative micro biomedical devices. In this paper we first discuss four important technology needs crucial to the realization of inexpensive disposable micro biomedical devices and then show early results obtained in our own laboratories towards the manufacture of three micro-biomedical and micro- analytical devices: disposable biosensors, CD based microfluidic platforms and responsive drug delivery pills.!18
机译:摘要:我们证明了微型生物传感器,流体平台,药物输送系统和其他微生物医学设备的制造如何越来越依赖非硅微制造技术。新方法本质上是混合的,并且将IC制造方法(例如光刻)与更传统的制造方法(例如层压,塑料成型和电镀)融合在一起。这些提出的方法可能涉及大片材料,甚至可能是连续的,即,每个单个基板可生产的器件数量大于硅批料的数量。这些技术也是模块化的而不是集成的,并且涉及诸如层压,液滴输送,拾取和放置,激光钻孔和切割等方法,以及从IC封装和PC板工业中借用的其他方法。这些新工艺将首次提供小型化的传感器,流体技术和其他微生物医学设备,其价格将使其能够在我们的日常生活中普及。组合不同组件时具有更大的模块性,以及具有所需特性(例如,生物相容性,韧性和光学透明性)的材料的更多选择将进一步加速许多更具创新性的微型生物医学设备的问世。在本文中,我们首先讨论对实现廉价的一次性微型生物医学设备至关重要的四个重要技术需求,然后展示在我们自己的实验室中针对制造三种微型生物医学和微分析设备所获得的早期结果:一次性生物传感器,基于CD的微流体技术平台和响应性药物递送药丸!! 18

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