A novel concept for low drift chemical sensing at micro and nano-scale

C. Cobianu, B. Șerban, I. Georgescu, S. Costea, C. Bostan
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引用次数: 3

Abstract

It is the purpose of this paper to present a novel generic concept for low drift chemical sensing which is applicable at micro and nanometer scale, based on a new, all-differential approach. At micrometer level, our principle is explained by means of surface acoustic wave (SAW) chemical sensing, while at nano level, we are using the resonant sensing principle to develop our genuine differential concept. Unlike the traditional differential approaches based on functionalized sensing layer in the sensing loop, and on a uncoated surface in the reference loop, our all differential concept provides a better response subtraction between the two paths, as the sensing loop consists of a functionalized sensing layer, as before, but, the reference loop consists of a functionalized non-sensing layer, with the same ageing and humidity behavior as the sensing layer. Twinned electronic reading is used for both loops, and thus all the common mode signals are subtracted in the differential reading, assuring the minimum base line drift of the sensor. Preliminary results of all differential sensor response to humidity and temperature variations are shown for the SAW sensors, with the sensor signal kept independent of their changes.
微纳米尺度低漂移化学传感的新概念
本文的目的是基于一种新的全微分方法,提出一种适用于微纳米尺度的低漂移化学传感的通用概念。在微米级,我们的原理是通过表面声波(SAW)化学传感来解释的,而在纳米级,我们正在使用共振传感原理来发展我们真正的微分概念。与传统的基于传感回路中功能化传感层和参考回路中未涂覆表面的差分方法不同,我们的全差分概念在两条路径之间提供了更好的响应减法,因为传感回路由一个功能化的传感层组成,就像以前一样,但是,参考回路由一个功能化的非传感层组成,具有与传感层相同的老化和湿度行为。两个回路都使用双电子读数,因此所有共模信号在差分读数中被减去,确保传感器的基线漂移最小。所有差分传感器对湿度和温度变化的响应的初步结果显示了SAW传感器,传感器信号保持独立于它们的变化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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