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Determination of Swelling of Responsive Gels with Nanometer Resolution. Fiber-Optic Based Platform for Hydrogels as Signal Transducers

机译:用纳米分辨率测定响应性凝胶的溶胀。基于水凝胶的光纤平台作为信号传感器

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摘要

A novel technique for detection of hydrogel swelling intended for use as a chemical or biological sensor, but also generally applicable for obtaining high-precision hydrogel swelling data, is described. The underlying design principle is that a hydrogel bound to the tip of an optical fiber constituting the environmental sensing element makes up a Fabry-Perot cavity for high-resolution detection of the optical length. The interference of light guided by the optical fiber and reflected at the two interfaces, fiber-gel and gel-solution, enables optical detection of the optical path length within the gel and degree of swelling of the gel. Acrylamide-based hydrogels with various molar fractions of the cationic monomer, N-(3-dimethylaminopropyl)acrylamide, were fabricated at the end of the fiber to demonstrate the feasibility of the approach. These sensors were investigated in solutions of varying ionic strength and pH. Relative gel length changes of the approx50-(mu)m half-spherical gels were determined with a precision of approx2 nm. Moreover, the combination of good reproducibility and resolution of determination of swelling supports measurements of ionic strength changes in the millimolar range. Kinetic measurements for gel swelling induced by changes in ionic strengths had a time constant of approx2 s (half-spherical gel with 60-(mu)m radius), whereas the time constants for gel swelling induced by changes in pH were observed in the range 90-130 s. Thus, different processes dictate the swelling rate in the two different cases. The results show that hydrogel equilibrium swelling and kinetics can be determined by the optical interference method with nanometer resolution, thus providing a unique platform for characterization of hydrogels swelling in general, and using functionalized hydrogels as biological sensors in particular.
机译:描述了一种新颖的检测水凝胶溶胀的技术,该技术旨在用作化学或生物传感器,但也普遍适用于获得高精度的水凝胶溶胀数据。基本的设计原理是,绑定到构成环境传感元件的光纤尖端的水凝胶构成了Fabry-Perot腔,用于高分辨率检测光学长度。由光纤引导并在纤维-凝胶和凝胶溶液这两个界面反射的光的干涉,使得能够对凝胶内的光程长度和凝胶的溶胀度进行光学检测。在纤维末端制备了具有各种摩尔分数的阳离子单体N-(3-二甲基氨基丙基)丙烯酰胺的丙烯酰胺基水凝胶,以证明该方法的可行性。在各种离子强度和pH值的溶液中对这些传感器进行了研究。以约2nm的精度确定约50μm的半球形凝胶的相对凝胶长度变化。此外,良好的重现性与溶胀度的确定性相结合,可以测量毫摩尔范围内的离子强度变化。离子强度变化引起的凝胶溶胀的动力学测量具有约2 s的时间常数(半径为60μm的半球形凝胶),而pH值变化引起的凝胶溶胀的时间常数在此范围内。 90-130秒钟因此,在两种不同情况下,不同的过程决定了溶胀率。结果表明,水凝胶平衡溶胀和动力学可以通过具有纳米级分辨率的光学干涉法来测定,从而为表征水凝胶溶胀提供了独特的平台,尤其是使用功能化水凝胶作为生物传感器。

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