Ionic Liquids as Green Solvents and Electrolytes for Robust Chemical Sensor Development

IF 17.7 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Abdul Rehman, Xiangqun Zeng*
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引用次数: 107

Abstract

Ionic liquids (ILs) exhibit complex behavior. Their simultaneous dual nature as solvents and electrolytes supports the existence of structurally tunable cations and anions, which could provide the basis of a novel sensing technology. However, the elucidation of the physiochemical properties of ILs and their connections with the interaction and redox mechanisms of the target analytes requires concerted data acquired from techniques including spectroscopic investigations, thermodynamic and solvation models, and molecular simulations. Our laboratory is using these techniques for the rational design and selection of ILs and their composites that could serve as the recognition elements in various sensing platforms. ILs show equal utility in both piezoelectric and electrochemical formats through functionalized ionics that provide orthogonal chemo- and regioselectivity.

In this Account, we summarize recent developments in and applications of task-specific ILs and their surface immobilization on solid supports. Such materials can serve as a replacement for conventional recognition elements and electrolytic media in piezoelectric and electrochemical sensing approaches, and we place a special focus on our contributions to these fields. ILs take advantage of both the physical and chemical forces of interaction and can incorporate various gas analytes. Exploiting these features, we have designed piezoelectric sensors and sensor arrays for high-temperature applications. Vibrational spectroscopy of these ILs reveals that hydrogen bonding and dipole–dipole interactions are typically responsible for the observed sensing profiles, but the polarization and cavity formation effect as an analyte approaches the recognition matrix can also cause selective discrimination.

IL piezoelectric sensors can have low sensitivity and reproducibility. To address these issues, we designed IL/conducting polymer host systems that tune existing molecular templates with highly selective structure specific interactions. We can also modulate the IL microenvironment so that ILs act as filler molecules to optimize host template cavity size, shape, and functionality. When used as non-volatile and tunable electrolytes, ILs show great potential for the development of both amperometric and electrochemical double layer capacitance sensors for the detection of oxygen and explosives. We also designed and tested a two dimensional electrode chip that enabled simultaneous monitoring of both piezoelectric and electrochemical signals. This device imparted additional selectivity and overcame the limitations of the typical sensing protocol. The integrated piezoelectric and electrochemical sensing approach allows the measure of the charge to mass ratio under a dynamic regime. The electrogravimetric dynamic relationship allows for further discrimination between and accurate quantification of the interfacial transfer of different species. In summary, although new systematic and mechanistic studies of ILs are needed, we show that the self-organized phases of the aggregated non-polar and charged domains of ILs are useful sensing materials for electrochemical and quartz crystal microbalance transducers.

Abstract Image

离子液体作为绿色溶剂和电解质用于稳健的化学传感器开发
离子液体表现出复杂的行为。它们同时作为溶剂和电解质的双重性质支持了结构可调的阳离子和阴离子的存在,这可能为一种新的传感技术提供基础。然而,要阐明ILs的物理化学性质及其与目标分析物的相互作用和氧化还原机制的联系,需要从光谱研究、热力学和溶剂化模型以及分子模拟等技术中获得协调一致的数据。我们的实验室正在使用这些技术来合理设计和选择il及其复合材料,这些材料可以作为各种传感平台的识别元素。通过提供正交化学选择性和区域选择性的功能化离子,il在压电和电化学格式中都显示出相同的效用。在这篇文章中,我们总结了特定任务的il及其在固体支架上的表面固定化的最新进展和应用。这些材料可以作为压电和电化学传感方法中传统识别元件和电解介质的替代品,我们特别关注我们在这些领域的贡献。ILs利用物理和化学相互作用的力量,并可以纳入各种气体分析物。利用这些特点,我们设计了用于高温应用的压电传感器和传感器阵列。这些离子的振动光谱显示,氢键和偶极-偶极相互作用是观察到的传感剖面的典型原因,但极化和空腔形成效应作为分析物接近识别矩阵也会导致选择性辨别。压电传感器灵敏度低,重复性差。为了解决这些问题,我们设计了IL/导电聚合物宿主系统,通过高度选择性的结构特异性相互作用来调整现有的分子模板。我们还可以调节IL微环境,使IL作为填充分子来优化宿主模板空腔的大小、形状和功能。当用作非挥发性和可调谐电解质时,il在用于检测氧气和爆炸物的安培和电化学双层电容传感器中显示出巨大的发展潜力。我们还设计并测试了一种二维电极芯片,可以同时监测压电和电化学信号。该装置提供了额外的选择性,克服了典型传感协议的局限性。集成的压电和电化学传感方法允许在动态状态下测量电荷质量比。电重动力学关系允许进一步区分和准确量化不同种类的界面转移。综上所述,虽然需要新的系统和机理研究,但我们表明,聚集的非极性和带电畴的自组织相是电化学和石英晶体微平衡传感器的有用传感材料。
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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来源期刊
Accounts of Chemical Research
Accounts of Chemical Research 化学-化学综合
CiteScore
31.40
自引率
1.10%
发文量
312
审稿时长
2 months
期刊介绍: Accounts of Chemical Research presents short, concise and critical articles offering easy-to-read overviews of basic research and applications in all areas of chemistry and biochemistry. These short reviews focus on research from the author’s own laboratory and are designed to teach the reader about a research project. In addition, Accounts of Chemical Research publishes commentaries that give an informed opinion on a current research problem. Special Issues online are devoted to a single topic of unusual activity and significance. Accounts of Chemical Research replaces the traditional article abstract with an article "Conspectus." These entries synopsize the research affording the reader a closer look at the content and significance of an article. Through this provision of a more detailed description of the article contents, the Conspectus enhances the article's discoverability by search engines and the exposure for the research.
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