Solubility properties of siloxane polymers for chemical sensors

J. Grate, M. Abraham
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引用次数: 1

Abstract

Many chemical sensors rely on a sorbent material to collect and concentrate analyte molecules at the sensor's surface where they can be detected. Ideally, this sorbent material will impart the chemical sensor with both sensitivity and selectivity for the target species. If the sensor is to be reversible, then the species must also desorb from the material or be actively removed by some process such as catalytic destruction. Polymer materials offer many attractive features for chemical sensing. Organic compounds are readily sorbed in a reversible fashion, selectivity can be altered by varying the chemical structure, and polymer materials can be processed into thin films. In this paper, we discuss the factors that govern the sorption of vapors by organic polymers. The approach described has been applied in the past for the design and selection of polymers for acoustic wave sensors. However, the principles apply equally well to the sorption of vapors by polymers used on optical chemical sensors. For example, the polymer could be applied as a thin film to a planar waveguide as the cladding along the length of an optical fiber, or to the end of an optical fiber. Species sorbed into the polymer could then be detected by a change in an optical signal.
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化学传感器用硅氧烷聚合物的溶解度
许多化学传感器依靠一种吸附材料来收集和浓缩在传感器表面的分析物分子,在那里它们可以被检测到。理想情况下,这种吸附材料将赋予化学传感器对目标物质的敏感性和选择性。如果传感器是可逆的,那么该物质也必须从材料中解吸,或者通过某些过程(如催化破坏)主动去除。高分子材料为化学传感提供了许多有吸引力的特性。有机化合物很容易以可逆的方式吸附,选择性可以通过改变化学结构来改变,高分子材料可以加工成薄膜。本文讨论了影响有机聚合物对蒸汽吸附的因素。所描述的方法已在过去应用于设计和选择用于声波传感器的聚合物。然而,这些原理同样适用于光学化学传感器上使用的聚合物对蒸汽的吸收。例如,聚合物可以作为薄膜应用于平面波导上,作为沿光纤长度的包层,或应用于光纤的末端。然后,可以通过光信号的变化来检测被吸附到聚合物中的物质。
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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