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Surface wettability studies of PDMS using flame plasma treatment

机译:使用火焰等离子体处理的pDms的表面润湿性研究

摘要

The flame plasma treatment studied in this thesis was able to oxidize the surface of Polydimethylsiloxane (PDMS) in a fraction of a second. It was found to be a much faster way to modify PDMS surface wettability than the current technologies. The surface wettability of Polydimethylsiloxane (PDMS) treated with flame plasma was studied. The surface wettability was characterized by contact angle measurements using water and a surface tension liquid as the probe liquids. Two experimental parameters were varied in this investigation: a) distance from the PDMS surface to the inner flame cone; b) the dwell time of the PDMS under the flame. The study concluded that the same surface wettability can be achieved through different combinations of distance and dwell time. The shortest dwell time needed to induce a contact angle of 100 or less on the treated PDMS surface in this experimental setup was approximately 0.18 second. This study also found that over treatment of the PDMS surface in the flame plasma yielded a reversal treatment effect and decreased the surface wettability. The flame plasma yielded uniform contact angle measurements within 15% across the PDMS surface. The recovery mechanism in the treated PDMS surfaces was dominated by the diffusion of untreated polymers from the bulk PDMS to the treated surface. The results from this investigation demonstrated the potential for the flame plasma treatment to be used in rapid manufacturing of PDMS microfludic devices.
机译:本文研究的火焰等离子体处理能够在不到一秒的时间内氧化聚二甲基硅氧烷(PDMS)的表面。人们发现,与现有技术相比,它是一种修改PDMS表面润湿性的更快方法。研究了火焰等离子体处理的聚二甲基硅氧烷(PDMS)的表面润湿性。通过使用水和表面张力液体作为探针液体的接触角测量来表征表面润湿性。在这项研究中,改变了两个实验参数:a)从PDMS表面到内部火焰锥的距离; b)PDMS在火焰下的停留时间。研究得出结论,通过距离和停留时间的不同组合可以实现相同的表面润湿性。在此实验设置中,在处理过的PDMS表面上引起100或更小的接触角所需的最短停留时间约为0.18秒。这项研究还发现,过度处理火焰等离子体中的PDMS表面会产生逆向处理效果,并降低表面润湿性。火焰等离子体在整个PDMS表面产生的均匀接触角测量值在15%以内。未处理的聚合物从本体PDMS扩散到已处理的表面的过程中,处理过的PDMS表面的恢复机制占主导地位。这项研究的结果表明,火焰等离子体处理有望用于快速制造PDMS微流体设备。

著录项

  • 作者

    Wang Xin C;

  • 作者单位
  • 年度 2009
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
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