开发用于制造海藻酸盐和碳纳米管微纤维的微流控装置和电子导流系统

Abdulsalam Ali Ahmed Salman, Chin Fhong Soon, Gim Pao Lim
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摘要

介绍了一种新型的碳纳米管-海藻酸钙微纤维微流控装置和电子输注系统。微流控装置采用Google SketchUp和3D打印技术进行设计,电子输注系统控制海藻酸盐溶液流向氯化钙瓶——硅- pdms微流控装置生成了带有碳纳米管的海藻酸钙微纤维。在COMSOL Multiphysics中对两种流体的乳化装置进行了建模。微流控装置和氯化钙罐通过高流量输液泵(100、150和200 rpm)从注射泵接收果汁。场发射扫描电镜(FE-SEM)、傅里叶变换红外光谱(FTIR)、拉曼光谱和x射线衍射分析(XRD)检测到尺寸从10到100 um的高浓度微纤维。I-V表征表明,5%、6%和7%的海藻酸钠碳纳米管产生的纤维尺寸在16.6 ~ 30微米之间。与纯海藻酸盐微纤维相比,含有碳纳米管和氯化钙的微纤维具有更高的机械强度和导电性。该研究表明,所开发的系统可以生产出具有改进性能的高级微纤维,用于各种应用。
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Development of microfluidic device and electronic infusion system to fabricate microfiber of alginate and carbon nanotube
A novel microfluidic device and electronic infusion system for carbon nanotube-calcium chloride alginate microfibers are presented in this study. The microfluidic device was designed using Google SketchUp and 3D printing, and the electronic infusion system-controlled alginate solution flow to the calcium chloride jar—the silicon-PDMS microfluidic device produced calcium alginate microfibers with carbon nanotubes. The device to emulsify the two fluids was modeled in COMSOL Multiphysics. The microfluidic device and calcium chloride jar received juice from the syringe pump via a high-flow infusion pump (100, 150, and 200 rpms). Field emission scanning electron microscopes (FE-SEM), Fourier transform infrared spectroscopy (FTIR), Raman spectroscopy, and X-ray diffraction analysis (XRD) detected highly concentrated microfibers with sizes from 10 to 100 um. I-V characterization showed that sodium alginate's carbon nanotubes at 5%, 6%, and 7% produced fiber sizes between 16.6 and 30 ums. Compared to pure alginate microfibers, those with carbon nanotubes and calcium chloride had higher mechanical strength and electrical conductivity. This study shows that the developed system can produce advanced microfibers with improved properties for various applications.
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