Liquid-liquid phase separator for synthesizing gold nanoparticles in toluene

Ho-Cheng Lee, Che-Hsin Lin
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引用次数: 1

Abstract

It is challenging to separate the immiscible liquid of low surface tension from water using the microfluidic device. This study presents a microfluidic chip composed of a T-junction, reaction channel and a novel liquid-liquid phase separator for continuously synthesizing fine gold nanoparticles in the organic solvent of toluene. The designed glass chip is used to separate two immiscible liquids via with the microfluidic channels of different depths. The surface tension and the capillary force differences are used to separate the two immiscible fluids. The stable segmented flow is initially produced by the T-junction and the gold salt is then reduced due at the reaction channel. The toluene with reduced AuNPs is finally collected via the designed separator downstream. Results show that the separator is capable for separating water (surface tension = 72.75 mN/m) and toluene (surface tension = 30.9 mN/m) with 92% separation efficiency. Results indicate that the gold nanoparticle (AuNPs) synthesized in the microdevice exhibits a narrower size distribution and better dispersion, comparing to the typical batch synthesis process. This study develops an efficient microfluidic system for stable chemical reaction and liquid-liquid phase separation in the microchannel.
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用于在甲苯中合成金纳米颗粒的液-液相分离器
利用微流控装置将低表面张力的不混相液体与水分离是一个挑战。本研究提出了一种由t型结、反应通道和新型液液相分离器组成的微流控芯片,用于在甲苯有机溶剂中连续合成金纳米颗粒。所设计的玻璃芯片通过不同深度的微流控通道分离两种不混相液体。利用表面张力和毛细管力差来分离两种不混相流体。稳定的分段流最初由t型结产生,然后金盐在反应通道处被还原。还原后的甲苯最终通过设计的分离器在下游收集。结果表明,该分离器可分离水(表面张力为72.75 mN/m)和甲苯(表面张力为30.9 mN/m),分离效率为92%。结果表明,与典型的间歇合成工艺相比,在该微装置中合成的金纳米颗粒具有更窄的粒径分布和更好的分散性。本研究开发了一种高效的微流控系统,用于微通道内稳定的化学反应和液-液相分离。
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