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由于溶剂诱导 PDMS 溶胀导致的微通道变形。

Microchannel deformations due to solvent-induced PDMS swelling.

机构信息

LadHyX and Department of Mechanics, Ecole Polytechnique, CNRS, 91128 Palaiseau Cedex, France.

出版信息

Lab Chip. 2010 Nov 7;10(21):2972-8. doi: 10.1039/c003504a. Epub 2010 Sep 16.

Abstract

The compatibility of polydimethylsiloxane (PDMS) channels with certain solvents is a well known problem of soft lithography techniques, in particular when it leads to the swelling of the PDMS blocks. However, little is known about the modification of microchannel geometries when they are subjected to swelling solvents. Here, we experimentally measure the deformations of the roof of PDMS microchannels due to such solvents. The dynamics of impregnation of the solvents in PDMS and its relation to volume dilation are first addressed in a model experiment, allowing the precise measurement of the diffusion coefficients of oils in PDMS. When Hexadecane, a swelling solvent, fills a microchannel 1 mm in width and 50 μm in height, we measure that the channel roof bends inwards and takes a parabolic shape with a maximum deformation of 7 μm. The amplitude of the subsidence is found to increase with the channel width, reaching 28 μm for a 2 mm wide test section. On the other hand, perfluorinated oils do not swell the PDMS and the microchannel geometry is not affected by the presence of perfluorodecalin. Finally, we observe that the trajectories of droplets flowing in this microchannel are strongly affected by the deformations: drops carried by swelling oils are pushed towards the edges of the channel while those carried by non-swelling oils remain in the channel center.

摘要

聚二甲基硅氧烷 (PDMS) 通道与某些溶剂的兼容性是软光刻技术众所周知的问题,尤其是当它导致 PDMS 块膨胀时。然而,当微通道几何形状受到溶胀溶剂的影响时,人们对其的改变知之甚少。在这里,我们通过实验测量了 PDMS 微通道屋顶由于这些溶剂而产生的变形。首先在模型实验中研究了溶剂在 PDMS 中的浸渍动力学及其与体积膨胀的关系,从而能够精确测量油在 PDMS 中的扩散系数。当十六烷(一种溶胀溶剂)充满宽度为 1 毫米、高度为 50 微米的微通道时,我们测量到通道屋顶向内弯曲并呈抛物线形,最大变形为 7 微米。沉降的幅度被发现随着通道宽度的增加而增加,在 2 毫米宽的测试部分达到 28 微米。另一方面,全氟油不会使 PDMS 溶胀,并且微通道的几何形状不受全氟癸烷的存在影响。最后,我们观察到在这种微通道中流动的液滴的轨迹受到变形的强烈影响:由溶胀油携带的液滴被推向通道边缘,而由非溶胀油携带的液滴则留在通道中心。

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