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Cylindrically Etched Carbon-Fiber Microelectrodes for Low-Noise Amperometric Recording of Cellular Secretion

机译:圆柱蚀刻碳纤维微电极用于细胞分泌的低噪声安培记录

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The most important sources of noise with disk-shaped carbon-fiber microelectrodes (CFMEs) are the exposed cut disk face of the fiber itself and the seal region between the carbon fiber and the applied insulating layer. To reduce noise and to fabricate simple, reproducible low-noise CFMEs, we sealed commercially available carbon fibers in pulled glass pipets and then we performed cylindrical etching of the fiber extending beyond the glass sheath, followed by insulation with anodic electrophoretic deposition of paint The resulting CFMEs had electroactive carbon disks with radii as small as ~0.5 μm. The noise of such electrodes was minimized by virtue of a design that ensures a good seal between the carbon fiber and its insulation and a reduced diameter of the exposed carbon. In contrast to CFMEs made of conically etched carbon fibers, cylindrically etched CFMEs offer the significant advantage that they can be easily reused: The cylindrically etched region extends over several hundreds of micrometers and, therefore, can be cut hack repeatedly to expose a fresh carbon surface of unifrom diameter. The low noise and small size of these electrodes make them ideal for the high-sensitivity measurements demanded in studies of single-vesicle transmitter release from secretory cells. Furthermore, the small cross-sectional diameter of the tips allows them to be used in restricted spaces, such as inside the tapering micrometer-al-meter tips of melted and pulled glass microcapillaries (e.g., patch pipets).
机译:盘状碳纤维微电极(CFME)产生的最重要的噪声源是纤维本身的裸露切割盘面以及碳纤维与所应用绝缘层之间的密封区域。为了降低噪声并制造简单,可复制的低噪声CFME,我们将市售的碳纤维密封在拉制的玻璃移液管中,然后对延伸超出玻璃护套的纤维进行圆柱形蚀刻,然后通过阳极电泳沉积涂料进行绝缘处理。 CFME的电活性炭盘半径小至约0.5μm。通过确保碳纤维与其绝缘材料之间的良好密封以及减小的暴露碳直径的设计,可将此类电极的噪音降至最低。与由圆锥形蚀刻的碳纤维制成的CFME相比,圆柱形蚀刻的CFME具有明显的优势,即它们可以轻松地重复使用:圆柱形蚀刻的区域延伸了数百微米,因此可以反复切割,以暴露出新鲜的碳表面直径的这些电极的低噪声和小尺寸使其非常适合研究分泌细胞释放单泡递质的高灵敏度测量。此外,尖端的小横截面直径允许它们在有限的空间中使用,例如在熔化的和拉制的玻璃微毛细管(例如,贴片移液管)的渐缩的微米-微米尖端内部。

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