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Design, fabrication and characterization of monolithic embedded parylene microchannels in silicon substrate

机译:硅衬底中单片嵌入式聚对二甲苯微通道的设计,制造和表征

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摘要

This paper presents a novel channel fabrication technology of bulk-micromachined monolithic embedded polymer channels in silicon substrate. The fabrication process favorably obviates the need for sacrifical materials in surface-micromachined channels and wafer-bonding in conventional bulk-micromachined channels. Single-layer-deposited parylene C (poly-para-xylylene C) is selected as a structural material in the microfabricated channels/columns to conduct life science research. High pressure capacity can be obtained in these channels by the assistance of silicon substrate support to meet the needs of high-pressure loading conditions in microfluidic applications. The fabrication technology is completely compatible with further lithographic CMOS/MEMS processes, which enables the fabricated embedded structures to be totally integrated with on-chip micro/nano-sensors/actuators/structures for miniaturized lab-on-a-chip systems. An exemplary process was described to show the feasibility of combining bulk micromachining and surface micromachining techniques in process integration. Embedded channels in versatile cross-section profile designs have been fabricated and characterized to demonstrate their capabilities for various applications. A quasi-hemi-circular-shaped embedded parylene channel has been fabricated and verified to withstand inner pressure loadings higher than 1000 psi without failure for micro-high performance liquid chromatography (µHPLC) analysis. Fabrication of a high-aspect-ratio (internal channel height/internal channel width, greater than 20) quasi-rectangular-shaped embedded parylene channel has also been presented and characterized. Its implementation in a single-mask spiral parylene column longer than 1.1 m in a 3.3 mm × 3.3 mm square size on a chip has been demonstrated for prospective micro-gas chromatography (µGC) and high-density, high-efficiency separations. This proposed monolithic embedded channel technology can be extensively implemented to fabricate microchannels/columns in high-pressure microfludics and high-performance/high-throughput chip-based micro total analysis systems (µTAS).
机译:本文提出了一种新的通道制造技术,该工艺在硅衬底中进行了整体微机械加工的整体式嵌入式聚合物通道。制造过程有利地消除了在表面微加工通道中对牺牲材料的需要以及在常规的批量微加工通道中对晶片键合的需要。选择单层沉积的聚对二甲苯C(聚对二甲苯C)作为微加工通道/柱中的结构材料来进行生命科学研究。借助于硅衬底支撑,可以在这些通道中获得高压容量,以满足微流体应用中高压加载条件的需求。该制造技术与进一步的光刻CMOS / MEMS工艺完全兼容,从而使所制造的嵌入式结构与用于微型实验室芯片系统的芯片上微/纳米传感器/执行器/结构完全集成在一起。描述了示例性过程以显示在过程集成中结合体微机械加工和表面微机械加工技术的可行性。已制造出具有通用横截面轮廓设计的嵌入式通道,并对其特性进行了表征,以展示其在各种应用中的功能。已制造出准半圆形的嵌入式聚对二甲苯通道,并进行了验证,可以承受超过1000 psi的内部压力,而不会进行微高效液相色谱(µHPLC)分析。还提出并表征了高纵横比(内部通道高度/内部通道宽度大于20)的准矩形嵌入式聚对二甲苯通道。已经证明,它可以在芯片上以3.3 mm×3.3 mm正方形尺寸在长于1.1 m的单掩膜螺旋聚对二甲苯色谱柱中实施,用于预期的微气相色谱(µGC)和高密度,高效率分离。所提议的单片嵌入式通道技术可以广泛实施,以制造高压微流体和基于高性能/高通量芯片的微总分析系统(µTAS)中的微通道/柱。

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