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用于金属离子选择性分离的微流控装置中的液膜操作。

Liquid membrane operations in a microfluidic device for selective separation of metal ions.

作者信息

Maruyama Tatsuo, Matsushita Hironari, Uchida Jun-ichi, Kubota Fukiko, Kamiya Noriho, Goto Masahiro

机构信息

Department of Applied Chemistry, Graduate School of Engineering, Kyushu University, 6-10-1 Hakozaki, Fukuoka 812-8581, Japan.

出版信息

Anal Chem. 2004 Aug 1;76(15):4495-500. doi: 10.1021/ac049844h.

Abstract

A three-phase flow, water/n-heptane/water, was constructed in a microchannel (100-microm width, 25-microm depth) on a glass microchip (3 cm x 7 cm) and was used as a liquid membrane for separation of metal ions. Surface modification of the microchannel by octadecylsilane groups induced spontaneous phase separation of the three-phase flow in the microfluidic device, which allows control of interfacial contact time and off-chip analysis using conventional analytical apparatus. Prior to the selective transport of a metal ion through the liquid membrane in the microchannel, the forward and backward extraction of yttrium and zinc ions was investigated in a two-phase flow on a microfluidic device using 2-ethylhexyl phosphonic acid mono-2-ethylhexyl ester (commercial name, PC-88A) as an extractant. The extraction conditions (contact time of the two phases, pH, extractant concentration) in the microfluidic device were examined. These investigations demonstrated that the conventional methodology for solvent extraction of metal ions is applicable to solvent extraction in a microchannel. Finally, we employed the three-phase flow in the microchannel as a liquid membrane and observed the selective transport of Y ion through the liquid membrane. In the present study, we succeeded, for the first time, in the selective separation of a targeted metal ion from an aqueous feed solution to a receiving phase within a few seconds by employing a liquid membrane formed in a microfluidic device.

摘要

在一块3厘米×7厘米的玻璃微芯片上的微通道(宽度100微米,深度25微米)中构建了水/正庚烷/水三相流,并将其用作分离金属离子的液膜。用十八烷基硅烷基团对微通道进行表面改性,可诱导微流控装置中三相流的自发相分离,这使得能够控制界面接触时间,并使用传统分析仪器进行芯片外分析。在金属离子通过微通道中的液膜进行选择性传输之前,使用2-乙基己基膦酸单2-乙基己酯(商品名,PC-88A)作为萃取剂,在微流控装置中的两相流中研究了钇和锌离子的正向和反向萃取。考察了微流控装置中的萃取条件(两相接触时间、pH值、萃取剂浓度)。这些研究表明,传统的金属离子溶剂萃取方法适用于微通道中的溶剂萃取。最后,我们将微通道中的三相流用作液膜,并观察到Y离子通过液膜的选择性传输。在本研究中,我们首次成功地通过使用微流控装置中形成的液膜,在几秒钟内将目标金属离子从水相进料溶液选择性分离到接收相中。

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