首页> 外文期刊>Microchemical Journal: Devoted to the Application of Microtechniques in all Branches of Science >Immobilization of functionalized gold nanoparticles in a well-organized silicon-based microextracting chip followed by online thermal desorption-gas chromatography
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Immobilization of functionalized gold nanoparticles in a well-organized silicon-based microextracting chip followed by online thermal desorption-gas chromatography

机译:将官能化金纳米颗粒固定在有组织的硅基微萃取芯片中,然后在线热解吸 - 气相色谱法

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摘要

In this survey, firstly, a silicon wafer-based microchip, possessing a 50-cm microchannel with the dimensions of 120 and 60 mu m, was manufactured by chemical etching technique. Subsequently, the inner surface of the microchannel was coated with a primary layer of gold nanoparticles synthesized by galvanic displacement. Then a self-assembled monolayer of 3-mercaptopropyltriethoxysilane was immobilized on the first layer. Eventually, a polydimethylsiloxane film with a thickness of 16 +/- 1 mu m was formed on the walls of the microchannel by means of sol-gel method. Field emission scanning electron microscopy and atomic force microscopy were extensively employed to investigate the status of both microchip fabrication and the multilayer coating steps. The entire surface of the prepared microchip was sealed by thin borosilicate glass plate. Furthermore, a ceramic plate with a screen-printed platinum heater was attached to the back of the silicon wafer microchip in order to heat up the microchannel during thermal desorption process. Additionally, a six-port injection valve was utilized between the microchip and nitrogen source allowing the stream of sample and heated gas being introduced into the microchannel. By adopting this extraordinary strategy, the so-called lab-on-a-valve endowed with the feature of direct conjunction with the injection port of the gas chromatography which so far been rarely considered. This lab-on-a-valve system was successfully exploited to evaluate its extraction/desorption capability in analysis of broad categories of model compounds.
机译:在本调查中,通过化学蚀刻技术制造,首先,具有尺寸为120和60μm的50cm微通道的基于硅晶片微芯片。随后,微通道的内表面涂覆有通过电常用移位合成的金纳米颗粒的一层。然后将3-巯基丙基三乙氧基硅烷的自组装单层固定在第一层上。最终,通过溶胶 - 凝胶法在微通道的壁上形成厚度为16 +/-1μm的聚二甲基硅氧烷膜。广泛使用现场发射扫描电子显微镜和原子力显微镜,以研究微芯片制造和多层涂层步骤的状态。通过薄的硼硅酸盐玻璃板密封制备的微芯片的整个表面。此外,具有丝网印刷铂加热器的陶瓷板连接到硅晶片微芯片的背面,以便在热解吸过程中加热微通道。另外,在微芯片和氮源之间使用六端口喷射阀,允许将样品流和加热气体引入微通道。通过采用这种非凡的策略,所谓的实验室阀门赋予了直接结合与气相色谱的注射端口的特征,这是很少考虑的。这种实验室阀门系统被成功利用,以评估其在广泛类别的模型化合物分析中的提取/解吸能力。

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