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Chemicapacitive microsensors for detection of explosives and TICs

机译:用于检测爆炸物和TICS的化学分析性微传感器

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Seacoast Science develops chemical sensors that use polymer-coated micromachined capacitors to measure the dielectric permittivity of an array of selectively absorbing materials. We present recent results demonstrating the sensor technology's capability to detect components in explosives and toxic industrial chemicals. These target chemicals are detected with functionalized polymers or network materials, chosen for their ability to adsorb chemicals. When exposed to vapors or gases, the permittivity of these sorbent materials changes depending on the strength of the vapor-sorbent interaction. Sensor arrays made of ten microcapacitors on a single chip have been previously shown to detect vapors of organic compounds (chemical warfare agents, industrial solvents, fuels) and inorganic gases (SO2, CO2, NO2). Two silicon microcapacitor structures were used, one with parallel electrode plates and the other with interdigitated "finger-like" electrodes. The parallel-plates were approximately 300 μm wide and separated by 750 nm. The interdigitated electrodes were approximately 400 μm long and were elevated above the substrate to provide faster vapor access. Eight to sixteen of these capacitors are fabricated on chips that are 5 x 2 mm and are packaged in less than 50 cm3 with supporting electronics and batteries, all weighing less than 500 grams. The capacitors can be individually coated with different materials creating a small electronic nose that produces different selectivity patterns in response to different chemicals. The resulting system's compact size, low-power consumption and low manufacturing costs make the technology ideal for integration into various systems for numerous applications.
机译:海岸科学开发了使用聚合物涂覆的微机器电容器的化学传感器来测量选择性吸收材料阵列的介电介电常数。我们最近的结果表明传感器技术能力检测炸药和有毒工业化学品中的组件。用官能化聚合物或网络材料检测这些目标化学品,选择吸附化学物质的能力。当暴露于蒸汽或气体时,这些吸附剂材料的介电常数根据蒸汽吸附剂相互作用的强度而变化。先前已经显示由单个芯片上的十个微型电容器制成的传感器阵列,以检测有机化合物(化学战,工业溶剂,燃料)和无机气体(SO2,CO2,NO2)的蒸气。使用两种硅片微型涂物结构,一个具有平行电极板,另一个具有互连的“指状”电极。平行平板约为300μm宽并分开750nm。互指电极长约400μm长,并在基板上方升高以提供更快的蒸汽接入。这些电容器中的8至16个在5×2mm的芯片上制造,并且在少于50cm 3的支撑电子和电池中包装,所有重量小于500克。电容器可以单独涂覆有不同的材料,从而产生小型电子鼻,以响应于不同的化学品产生不同的选择性模式。由此产生的系统紧凑的尺寸,低功耗和低制造成本使得该技术成为众多应用的各种系统的理想选择。

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