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首页> 外文期刊>Sensors and Actuators >Characterisation of an irreversible bonding process for COC-COC and COC-PDMS-COC sandwich structures and application to microvalves
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Characterisation of an irreversible bonding process for COC-COC and COC-PDMS-COC sandwich structures and application to microvalves

机译:COC-COC和COC-PDMS-COC夹心结构不可逆键合过程的表征及其在微阀中的应用

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A novel technique for bonding heterogeneous cyclic olefin co-polymer (COC) to a thin poly(dimethylsiloxane) (PDMS) membrane is described. This improved bonding technique successfully achieved precise, well-controlled, low temperature bonding of microfluidic channels. MicroChannel and fluid control patterns were embossed on a COC substrate by hot embossing technique first. The method uses aminopropyltriethoxysilane (APTES) and 3-glycidoxypropyltrimethoxysilane (GPTMS) in combination to create an irreversible bond between the two materials. The change in surface properties and the influence of different surface chemical groups on surface adhesion properties has been characterised by contact angle, surface energy measurements, scanning electron microscopy (SEM), and atomic force microscopy (AFM), revealing a change in morphology and surface roughness. A lower wettability was also observed along with a reduced hydrophobic recovery of the surfaces. Bonding efficiency of the devices was evaluated by interface evaluation of cross-sectioning, peel off tests and leak tests. In addition, the performance of the bonds achieved after different surface treatments has been compared showing that this technique results in a higher burst pressures than methods applying only oxygen plasma or APTES. Using optimised bonding conditions a robust, effective microvalve made from a PDMS membrane was fabricated and successful valve closing or opening are shown. Because of advantages of facile fabrication, low cost and biocompatibility, this hybrid device can be pave the way in many applications such as fluidic manipulation in portable and disposable microfluidic devices.
机译:描述了一种将异质环状烯烃共聚物(COC)粘合到聚二甲基硅氧烷(PDMS)薄膜上的新技术。这项改进的键合技术成功实现了微流体通道的精确,控制良好的低温键合。首先通过热压印技术将微通道和流体控制图案压印在COC基板上。该方法结合使用氨基丙基三乙氧基硅烷(APTES)和3-环氧丙氧基丙基三甲氧基硅烷(GPTMS)在两种材料之间建立不可逆键。通过接触角,表面能测量,扫描电子显微镜(SEM)和原子力显微镜(AFM)表征了表面性质的变化以及不同表面化学基团对表面附着性能的影响,揭示了形态和表面的变化粗糙度。还观察到较低的润湿性以及降低的表面疏水性回收率。通过横截面的界面评估,剥离测试和泄漏测试来评估器件的键合效率。另外,已经比较了在不同表面处理之后获得的键的性能,表明该技术比仅施加氧等离子体或APTES的方法产生更高的破裂压力。使用优化的粘合条件,可以制造出由PDMS膜制成的坚固,有效的微型阀,并显示了成功的阀门关闭或打开状态。由于易于制造,低成本和生物相容性的优点,该混合装置可在许多应用中铺平道路,例如便携式和一次性微流体装置中的流体操纵。

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