Enhanced ion-selective membrane sensors based on a novel electroacoustic measurement approach

Bruno F.E. Matarèse, A. Kale, A. Stevenson
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引用次数: 1

Abstract

this work investigates the mechanical and dielectric properties of an ion-selective membrane based on PDMS:PEG:valinomycin, with a view to creating practical geometries for high performance ion sensing in a variety of realworld settings including healthcare, food industry and agriculture. We focus effort on measuring physical changes in the membrane that can be detected with simple sensors. First a dynamic mechanical analyser instrument was used to determine the effect of potassium ions on the real and imaginary bending storage modulus, loss tangent, glass transition temperature, temperature coefficient of millimeter sized PDMS samples. Second, a microwave dielectric analyser with a coaxial probe fixture was applied to the same sample to isolate dielectric shifts associated with ion uptake, namely the real and imaginary permittivities. These perturbation measurements performed for PDMS, PDMS:PEG and PDMS:PEG:V samples, provide strong evidence that alternatives to traditional electrochemical sensing devices can easily be constructed. Thus a plethora of new acoustic and capacitive sensing geometries arise. Thus there is the opportunity to integrate membranes into quartz crystal microbalance, surface acoustic wave and single-sided capacitance sensors. Some suggestions on suitable dimensions, aspect ratios, operating frequencies are provided.
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基于新型电声测量方法的增强型离子选择膜传感器
这项工作研究了基于PDMS:PEG:valinomycin的离子选择膜的机械和介电性能,以期在各种现实世界环境中创建高性能离子传感的实用几何形状,包括医疗保健,食品工业和农业。我们专注于测量膜的物理变化,这些变化可以用简单的传感器检测到。首先利用动态力学分析仪测定了钾离子对毫米尺寸PDMS样品的实、虚弯曲储存模量、损耗切线、玻璃化转变温度、温度系数的影响。其次,将带同轴探针夹具的微波介电分析仪应用于同一样品,以分离与离子摄取相关的介电位移,即实介电常数和虚介电常数。这些对PDMS, PDMS:PEG和PDMS:PEG:V样品进行的微扰测量提供了强有力的证据,证明可以很容易地构建传统电化学传感装置的替代品。因此,出现了大量新的声学和电容传感几何形状。因此,有机会将膜集成到石英晶体微天平,表面声波和单面电容传感器中。对合适的尺寸、宽高比、工作频率提出了一些建议。
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