首页> 外文会议>Developments in strategic materials and computational design V >FABRICATION AND ELECTRICAL PROPERTIES OF CUP-STACKED CARBON NANOTUBES/POLYMER NANOCOMPOSITE FILMS AS AN ELECTRODE SENSOR FOR BRAIN-WAVE DETECTION
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FABRICATION AND ELECTRICAL PROPERTIES OF CUP-STACKED CARBON NANOTUBES/POLYMER NANOCOMPOSITE FILMS AS AN ELECTRODE SENSOR FOR BRAIN-WAVE DETECTION

机译:杯状碳纳米管/聚合物纳米复合薄膜的制备及电学性能,用于电极波检测

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摘要

Polymer-based composites films with cup-stacked carbon nanotubes (CSCNTs) are fabricated with objectives to enhance the electrical sensitivities to detect brain-waves without disturbing electroencephalography- computed tomography (EEG-CT) imaging. CSCNTs are homogeneously dispersed in pre-polymer of polysiloxane using a high speed mixer at rotation speed of 1500rpm for 1h after ultrasonic treatment for 30 min. The pre-polymer suspension including CSCNTs fillers was casted on the polyimide spacer and underwent air removal by vacuum treatment, and dried for 2h at 80℃ to confirm complete curing. The electrical resistivity of the composites was evaluated by using four point probe method. The cross-section of the sample was observed by SEM microscope and digital microscope. The artifact effect of the composite films under X-ray environment was evaluated by X-ray CT scanning. Effects of solvent and vacuum treatment are performed during fabrication in order to motivate denser packing of the nano inclusions reducing inter-phase gaps in the matrix. X-ray transmission, electric resistivity and pressure sensitiveness are analyzed for evaluation of the internal structure variation and enhancement of physical properties of the composites. Analysis shows that the composite films enhance the X-ray transmission as well as high electrical conductivity without harmful effects to human body, which makes CSCNTs hybrid film as a promising material for EEG-CT recording system.
机译:制造具有杯状堆叠式碳纳米管(CSCNT)的聚合物基复合膜的目的是增强电敏感度以检测脑电波,而不会干扰脑电图X线断层扫描(EEG-CT)成像。在超声处理30分钟后,使用高速混合器以1500rpm的旋转速度将CSCNT均匀分散在聚硅氧烷的预聚物中1h。将包含CSCNTs填料的预聚物悬浮液浇铸在聚酰亚胺垫片上,并通过真空处理进行除气,然后在80℃下干燥2小时,以确保完全固化。使用四点探针法评价复合材料的电阻率。通过SEM显微镜和数字显微镜观察样品的横截面。通过X射线CT扫描评价了复合膜在X射线环境下的伪影效果。在制造过程中执行溶剂和真空处理的作用,以促使纳米夹杂物更紧密地堆积,从而减少基质中的相间间隙。分析X射线透射率,电阻率和压力敏感性,以评估内部结构的变化并增强复合材料的物理性能。分析表明,该复合膜增强了X射线的透射率,并具有较高的导电性,且对人体无害,这使得CSCNTs杂化膜成为EEG-CT记录系统的理想材料。

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    Extreme Energy-Density Research Institute Nagaoka University of Technology Nagaoka, Niigata 940-2188, Japan;

    Extreme Energy-Density Research Institute Nagaoka University of Technology Nagaoka, Niigata 940-2188, Japan;

    Extreme Energy-Density Research Institute Nagaoka University of Technology Nagaoka, Niigata 940-2188, Japan;

    Extreme Energy-Density Research Institute Nagaoka University of Technology Nagaoka, Niigata 940-2188, Japan;

    Extreme Energy-Density Research Institute Nagaoka University of Technology Nagaoka, Niigata 940-2188, Japan;

    Extreme Energy-Density Research Institute Nagaoka University of Technology Nagaoka, Niigata 940-2188, Japan;

    Extreme Energy-Density Research Institute Nagaoka University of Technology Nagaoka, Niigata 940-2188, Japan;

    Extreme Energy-Density Research Institute Nagaoka University of Technology Nagaoka, Niigata 940-2188, Japan;

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