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Synthesis and characterization of photodefinable polycarbonates for use as sacrificial materials in the fabrication of microfluidic devices

机译:在微流控设备制造中用作牺牲材料的光可定义聚碳酸酯的合成与表征

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A fabrication technique recently developed at Georgia Institute of Technology involving thermally sacrificial polymeric materials allows for fabrication of microfluidic devices with greater degrees of functionality (i.e., fully integrated, complex, multi-level fluidic systems with functional valves, pumping systems, and other micro-electromechanical system [MEMS] components). In this method, thermally sacrificial polymers are coated onto a substrate and patterned into the shape of the desired channels and devices. These polymeric structures are then over-coated with a permanent structural material such as an inorganic glass or polymer. These steps can be repeated to produce complex, three-dimensional systems. Once the device build-up is complete, the structure is heated to a temperature at which the sacrificial polymer slowly decomposes, thus leaving behind the desired open-channeled structures. This process was first developed using functionalized polynorbornenes that decompose at temperatures in the range of 425°C. In order to make this approach compatible with a wider range of substrates and structural materials, polymers with lower decomposition temperatures were desired. Polycarbonates were identified as a class of polymers with the desired lower decomposition temperatures (200-300°C). A disadvantage of commercially available polycarbonates, like poly (propylene carbonate), is that they have low glass transition temperatures (T_g ≈ 40°C). This introduces several problems, including pattern deformation at elevated processing temperatures. Also, a significant number of process steps are required to pattern the channel structures using simple polymer materials. Therefore, this paper will describe recent results of work on photodefinable polycarbonates with improved thermal properties. Utilizing a polymer that can be patterned directly by conventional lithography greatly simplifies the fabrication process and eliminates the need for the plasma etch steps required in the original process. Results of the synthesis and characterization of polycarbonates patterned with the use of a photoacid generator, thus exploiting the acid-catalyzed thermolysis of polycarbonates, will be presented.
机译:佐治亚理工学院最近开发的一种涉及热牺牲聚合材料的制造技术可以制造具有更高功能等级的微流控设备(例如,具有功能阀的完全集成,复杂,多级流体系统,泵送系统以及其他微动装置)。机电系统[MEMS]组件)。在这种方法中,将热牺牲聚合物涂覆到基板上,并构图为所需通道和设备的形状。然后,用永久性结构材料(例如无机玻璃或聚合物)对这些聚合物结构进行覆盖。可以重复这些步骤以生成复杂的三维系统。一旦完成装置构建,就将结构加热到牺牲聚合物缓慢分解的温度,从而留下所需的明通道结构。该方法首先使用官能化的聚降冰片烯开发,该聚降冰片烯在425°C的温度下分解。为了使该方法与更广泛的基材和结构材料兼容,需要具有较低分解温度的聚合物。聚碳酸酯被鉴定为具有所需较低分解温度(200-300℃)的一类聚合物。市售聚碳酸酯(如聚碳酸亚丙酯)的一个缺点是它们的玻璃化转变温度低(T_g≈40°C)。这带来了几个问题,包括在升高的处理温度下的图案变形。而且,需要大量的处理步骤以使用简单的聚合物材料来图案化通道结构。因此,本文将描述具有改进的热性能的可光定义聚碳酸酯的最新工作结果。使用可以通过常规光刻直接图案化的聚合物极大地简化了制造过程,并且消除了原始过程中所需的等离子蚀刻步骤的需要。将给出利用光酸产生剂图案化的聚碳酸酯的合成和表征的结果,从而利用了酸催化的聚碳酸酯的热解。

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