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EFFECTS OF TEMPERATURE AND HUMIDITY ON THE PERFORMANCE OF POLYMER-COATED SURFACE ACOUSTIC WAVE VAPOR SENSOR ARRAYS

机译:温度和湿度对聚合物包覆的表面声波汽相传感器阵列性能的影响

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The influences of temperature and atmospheric humidity on the performance of an array of eight polymer-coated 158-MHz surface acoustic wave vapor sensors were investigated. Sensitivities to the seven organic vapors examined all exhibited negative Arrhenius temperature dependencies, with responses increasing by factors of 1.5-4.4 on going from 38 to 18 degrees C. The magnitudes of the temperature effects, while generally similar, differed sufficiently among certain sensor-vapor combinations to cause marked changes in vapor response patterns. In addition, it was found that operating identically coated sensors at different temperatures could provide a means for discriminating certain vapors. The changes in sensor responses with temperature agreed reasonably well with those expected assuming ideal vapor sorption behavior and indicated that changes in the moduli of the sensor coatings were not important mediating factors, Responses to relative humidity (RH) from 0 to 85% RH were important even for the nonpolar sensor coatings. Significant changes in the sensitivities to the organic vapors were observed as a function of atmospheric humidity for several sensor-vapor combinations, which, in turn, affected the patterns of responses obtained from the sensor array. Results indicate that small changes in temperature or humidity have a larger effect on baseline stabilities than on the responses to the vapors. Monte Carlo simulations of sensor responses show that the ability to discriminate vapors in binary and ternary mixtures using a four-sensor array remains high regardless of the operating temperature and ambient humidity, provided that temperature- or humidity-induced changes in the response patterns are taken into account.
机译:研究了温度和大气湿度对八个聚合物涂层的158MHz表面声波蒸汽传感器阵列的性能的影响。对7种有机蒸气的敏感性均显示出负的Arrhenius温度依赖性,在从38到18摄氏度时响应增加了1.5-4.4倍。某些传感器蒸气之间的温度效应幅度虽然大体相似,但差异很大组合引起蒸气响应模式的明显变化。另外,已经发现在不同温度下操作相同涂层的传感器可以提供区分某些蒸气的手段。传感器响应随温度的变化与假设理想蒸气吸附行为的预期值基本吻合,表明传感器涂层的模量变化不是重要的中介因素,相对湿度(RH)从0到85%RH的响应很重要即使是非极性传感器涂层。对于几种传感器-蒸汽组合,观察到对有机蒸气的敏感性的显着变化是大气湿度的函数,这反过来又影响了从传感器阵列获得的响应模式。结果表明,温度或湿度的微小变化对基线稳定性的影响大于对蒸气的响应。传感器响应的蒙特卡洛模拟表明,使用四传感器阵列区分二元和三元混合物中的蒸气的能力仍然很高,而无需考虑工作温度和环境湿度,只要采取温度或湿度引起的响应模式变化即可考虑在内。

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