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Active voltammetric microsensors with neural signal processing

机译:具有神经信号处理的主动伏安微传感器

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Many industrial and environmental processes, including bioremediation, would benefit from the feedback and control information provided by a local multi-analyte chemical sensor. For most processes, such a sensor would need to be rugged enough to be placed in situ for long-term remote monitoring, and inexpensive enough to be fielded in useful numbers. The multi-analyte capability is difficult to obtain from common passive sensors, but can be provided by an active device that produces a spectrum-type response. Such new active gas microsensor technology has been developed at Argonne National Laboratory. The technology couples an electrocatalytic ceramic-metallic (cermet) microsensor with a voltammetric measurement technique and advanced neural signal processing. It has been demonstrated to be flexible, rugged, and very economical to produce and deploy. Both narrow interest detectors and wide spectrum instruments have been developed around this technology. Much of this technology's strength lies in the active measurement technique employed. The technique involves applying voltammetry to a miniature electrocatalytic cell to produce unique chemical 'signatures' from the analytes. These signatures are processed with neural pattern recognition algorithms to identify and quantify the components in the analyte. The neural signal processing allows for innovative sampling and analysis strategies to be employed with the microsensor. In most situations, the whole response signature from the voltammogram can be used to identify, classify, and quantify an analyte, without dissecting it into component parts. This allows an instrument to be calibrated once for a specific gas or mixture of gases by simple exposure to a multi-component standard rather than by a series of individual gases. The sampled unknown analytes can vary in composition or in concentration; the calibration, sensing, and processing methods of these active voltammetric microsensors can detect, recognize, and quantify different signatures and support subsequent analyses. The instrument can be trained to recognize and report expected analyte components (within some tolerance), but also can alarm when unexpected components are detected. Unknowns can be repeat-sampled to build a reference library for later post processing and verification.
机译:许多工业和环境过程,包括生物修复,将受益于局部多分析物化学传感器提供的反馈和控制信息。对于大多数过程,这种传感器需要坚固得足以以原位放置用于长期远程监控,并且足够廉价地以有用的数字进行曝光。多分析物能力难以从共同的无源传感器获得,但是可以由产生频谱型响应的有源器件提供。这种新的活性气体微传感器技术已经在阿尔冈国家实验室开发。该技术将电催化陶瓷金属(金属陶瓷)微传感器耦合,具有伏安测量技术和先进的神经信号处理。它已被证明是灵活的,粗犷,非常经济地生产和部署。围绕该技术开发了狭窄的兴趣探测器和广谱仪器。这项技术的大部分优势在于采用的主动测量技术。该技术涉及将伏安法施加到微型电催化细胞中,从分析物中产生独特的化学物质“签名”。使用神经模式识别算法处理这些签名以识别和量化分析物中的组件。神经信号处理允许使用微传感器的创新采样和分析策略。在大多数情况下,来自伏安图的整个响应签名可用于识别,分类和量化分析物,而不将其解剖到组件部件。这允许通过简单地暴露于多组分标准而不是一系列单独的气体来校准一次用于特定气体或气体混合物的仪器。采样的未知分析物可以在组成或浓度中变化;这些活性伏安微传感器的校准,感测和处理方法可以检测,识别和量化不同的签名并支持随后的分析。仪器可以接受培训以识别并报告预期的分析物组件(在某些公差范围内),而且在检测到意外的组件时也会报警。未知值可以重复采样以构建参考库,以便稍后的后处理和验证。

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