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Novel technological process to manufacture ceramic microelectrodes for biomedical applications implying microextrusion of preceramic precursors

机译:制造用于生物医学应用的陶瓷微电极的新技术工艺,暗示了陶瓷前体的微挤压

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A novel technological process is under development to obtain ceramic microelectrodes from preceramic precursors, basically for biomedical applications. A microextrusion approach is applied. Commercially available silicone resins are used as preceramic polymers. Drugging with carbon black results in electrically conductive ceramics. A coextrusion approach is used to obtain the filament with inner conductive lines. Chemical reticulation and pyrolysis are applied to convert polymeric resins into ceramics. Some different geometries of profiles and cross sections can be considered and obtained. Circular microelectrodes can be provided with diameters in the range between 100 /spl mu/m and 5 mm and wide coextrusion dimension ratios are obtainable. Preliminary results on filaments with diameter between 100 /spl mu/m and 500 /spl mu/m showed bending strength ranging from 30 MPa to 1100 MPa and average conductivity of 0.375 1//spl Omega/cm for a 50% weight carbon black load. Selecting such characteristics and related materials mainly depends on specific applications. Biomedical electrodes can be devised as stimulators or sensors in neurosurgery, beep brain stimulation and cell biology. It's important to achieve strict control of the above characteristics demanded by desired performances and obtained by suitably adjusting the technological process. Such control is hard to attain for great sensitiveness of some features of micro-geometry and micro-structure to process parameters.
机译:正在开发一种新的技术方法,以从陶瓷前体中获得陶瓷微电极,基本上用于生物医学应用。应用了微挤压方法。市售的有机硅树脂用作陶瓷前体聚合物。用炭黑麻醉会产生导电陶瓷。共挤出方法用于获得具有内部导线的细丝。应用化学成网和热解将聚合物树脂转化为陶瓷。可以考虑并获得轮廓和横截面的一些不同几何形状。圆形微电极的直径可以在100 /splμm/ m和5mm之间,并且可以获得宽的共挤出尺寸比。直径在100 / spl mu / m和500 / spl mu / m之间的细丝的初步结果显示,弯曲强度范围为30 MPa至1100 MPa,平均电导率为0.375 1 // splΩ/ cm(重量百分比为50%的炭黑负载) 。选择这样的特性和相关材料主要取决于特定的应用。生物医学电极可以设计成神经外科,蜂鸣脑刺激和细胞生物学中的刺激器或传感器。重要的是要严格控制所需性能所需的上述特性,并通过适当调整工艺过程来获得上述特性。对于微观几何形状和微观结构的某些特征对工艺参数的高度敏感性,很难获得这种控制。

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