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Nematic liquid crystal interfaces for chemical and biological detection

机译:向列液晶接口,用于化学和生物检测

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Nematic liquid crystals (NLCs) have traditionally been used in displays and other electro-optical applications where the orientation of NLC is manipulated by using an external electric field to display the information. In recent years, there have been significant advances in unconventional applications of NLCs in photonics, sensors, and diagnostics. In this paper, the application of NLCs for detection of vapor phase chemicals and biological entities is presented. When NLCs are in contact with another medium (solid, liquid or air) the delicate interplay between the properties of medium and NLCs determines the nature of the alignment assumed by NLCs at the interface. Interfaces functionalized with select chemical or biological entities promote alignment of NLCs in predetermined orientations (perpendicular or parallel to that interface) that are primarily dictated by local interactions at the interface. When these interfaces are exposed to target analytes, the interactions at the interfaces are perturbed and the NLC films undergo orientational transitions from perpendicular to parallel alignment, or vice versa. The orientational transition can be detected by viewing the film of NLCs between crossed polarizers (optical signal) or by measuring the differential capacitance associated with the change in alignment of NLCs (electrical signal). By engineering surfaces with different interfacial properties, sensors based on this principle have been demonstrated to selectively detect a wide variety of chemical and biological analytes that have relevance in industrial hygiene, environmental monitoring, homeland security, diagnostics, and biomedical applications.
机译:传统上,向列型液晶(NLC)已用于显示器和其他电光应用,其中NLC的方向是通过使用外部电场来显示信息来控制的。近年来,NLC在光子学,传感器和诊断中的非常规应用取得了重大进展。本文介绍了NLC在气相化学物和生物实体检测中的应用。当NLC与另一种介质(固体,液体或空气)接触时,介质和NLC的特性之间的微妙相互作用决定了NLC在界面处假定的排列性质。用选择的化学或生物实体功能化的界面促进了NLC在预定方向(垂直于或平行于该界面)的排列,该方向主要由界面处的局部相互作用决定。当这些界面暴露于目标分析物时,界面处的相互作用会受到干扰,并且NLC膜会经历从垂直对齐到平行对齐的取向转变,反之亦然。可以通过查看交叉偏振器之间的NLC膜(光信号)或通过测量与NLC的取向变化相关的差分电容(电信号)来检测方向转换。通过对具有不同界面特性的表面进行工程处理,已证明基于该原理的传感器可以选择性地检测与工业卫生,环境监测,国土安全,诊断和生物医学应用相关的多种化学和生物分析物。

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