Organ Development Research Laboratory, National Institute of Advanced Industrial Science and Technology (AIST), 1-1-1 Higashi, Tsukuba, Ibaraki, 305-8565, Japan.
Lab Chip. 2010 Feb 7;10(3):357-62. doi: 10.1039/b916318b. Epub 2009 Nov 26.
We developed a novel microfluidic device to prepare monodisperse water-in-oil-in-water (W/O/W) emulsions with an ultra-thin (<1 microm) oil phase layer. This microfluidic device was composed of two microchannel junctions, one of which had a step structure, and a uniformly hydrophobic surface for effective oil removal from W/O/W droplets. At the first junction, an internal aqueous phase was transformed into slug-shaped water-in-oil (W/O) droplets by a flow-focusing mechanism. At the second junction equipped with the step structure, the preformed slug-shaped W/O droplets were introduced into an external aqueous phase and were transformed into spherical W/O droplets. In the downstream area of the second junction, the W/O droplets were released from the hydrophobic surface of the microchannel into the external aqueous phase by inertial lift force and were transformed into W/O/W droplets. During this process, most of the oil phase was effectively removed from the W/O droplets: the bulk of the oil phase flowed along the hydrophobic surface of the microchannel. The thickness of the oil phase layer of the resulting W/O/W droplets was ultra-thin, less than 1 microm. The volume of the internal aqueous phase of the W/O/W droplets reflected that of the W/O droplets and was controlled by the flow rates of the internal aqueous phase and oil phase during W/O droplet formation. We successfully demonstrated encapsulation of water-soluble molecules and polymer particles into the prepared W/O/W emulsion.
我们开发了一种新颖的微流控装置,用于制备具有超薄膜(<1 微米)油相层的单分散油包水包油(W/O/W)乳液。该微流控装置由两个微通道接头组成,其中一个具有阶跃结构,并具有均匀的疏油表面,可有效去除 W/O/W 液滴中的油相。在第一连接点,通过流聚焦机制将内部水相转化为弹状的油包水(W/O)液滴。在第二个连接点配备了阶跃结构,预成型的弹状 W/O 液滴被引入外部水相并转化为球形 W/O 液滴。在第二个连接点的下游区域,W/O 液滴通过惯性升力从微通道的疏油表面释放到外部水相,并转化为 W/O/W 液滴。在此过程中,大部分油相从 W/O 液滴中有效去除:大部分油相沿着微通道的疏油表面流动。所得 W/O/W 液滴的油相层厚度超薄,小于 1 微米。W/O/W 液滴的内部水相体积反映了 W/O 液滴的体积,并由 W/O 液滴形成过程中内部水相和油相的流速控制。我们成功地将水溶性分子和聚合物颗粒包封到制备的 W/O/W 乳液中。