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Smart polymeric gels:Redefining the limits of biomedical devices

机译:智能聚合物凝胶:重新定义生物医学设备的局限性

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This review describes recent progresses in the development and applications of smart polymeric gels,especially in the context of biomedical devices.The review has been organized into three separate sections:defining the basis of smart properties in polymeric gels;describing representative stimuli to which these gels respond;and illustrating a sample application area,namely,microfluidics.One of the major limitations in the use of hydrogels in stimuli-responsive applications is the diffusion rate-limited transduction of signals.This can be obviated by engineering interconnected pores in the polymer structure to form capillary networks in the matrix and by downscaling the size of hydrogels to significantly decrease diffusion paths.Reducing the lag time in the induction of smart responses can be highly useful in biomedical devices,such as sensors and actuators.This review also describes molecular imprinting techniques to fabricate hydrogels for specific molecular recognition of target analytes.Additionally,it describes the significant advances in bottom-up nanofabrication strategies,involving supramolecular chemistry.Learning to assemble supramolecular structures from nature has led to the rapid prototyping of functional supramolecular devices.In essence,the barriers in the current performance potential of biomedical devices can be lowered or removed by the rapid convergence of interdisciplinary technologies.
机译:这篇综述描述了智能聚合物凝胶的开发和应用的最新进展,特别是在生物医学设备的背景下。该综述分为三个部分:定义聚合物凝胶智能特性的基础;描述这些凝胶的代表性刺激在响应反应性应用中使用水凝胶的主要限制之一是信号的扩散速率受限的转导,这可以通过在聚合物结构中工程化互连的孔来消除在基质中形成毛细血管网络,并缩小水凝胶的尺寸以显着减少扩散路径。减少智能反应诱导中的滞后时间对生物医学设备(如传感器和致动器)非常有用。本文还介绍了分子印迹技术制备水凝胶以对目标肛门进行特异性分子识别此外,它还描述了自下而上的纳米制造策略的重大进展,涉及超分子化学。学习从自然界组装超分子结构导致了功能性超分子装置的快速原型设计。实质上,目前生物医学性能潜力的障碍跨学科技术的快速融合可以降低或移除设备。

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