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首页> 外文期刊>Journal of the Mechanics and Physics of Solids >Swelling mechanism in smart polymers responsive to mechano-chemical stimuli
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Swelling mechanism in smart polymers responsive to mechano-chemical stimuli

机译:响应机械化学刺激的智能聚合物中的膨胀机制

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摘要

Smart materials and smart structural systems are of paramount importance in the development of modern technological applications such as in bioengineering (tissue engineering, drug delivery, microscale surgery, ...), packaging, data storage, molecular machines, smart sensors and actuators, etc. Smart polymers, often termed as responsive polymers, show physical or chemical changes in response to environmental stimuli of physical (ionic, temperature, radiation, light, mechanical stress, ...), chemical (specific ions, pH, chemical agents, ...), or biochemical (enzyme, substrates, ligands, ...) nature; sometimes they could also respond to a combination of two or more triggering actions at the same time. In the present study the responsiveness of smart polymers to a chemical and mechanical stimuli at the same time is considered. In particular, being the chemical action typically carried by a solvent medium, the interplay of the fluid absorption mechanism and the chemical triggering one is accounted for. Moreover, in our study we also focus on the responsiveness capability of providing a detectable mechanical response at the mesoscopic scale, induced by a geometric change (typically a volume expansion) at the molecular scale. The mechanics of polymers undergoing swelling and showing responsiveness is investigated through a micromechanical model, subsequently implemented in a computational framework, for the prediction of the mechanical behavior of this class of active materials.
机译:智能材料和智能结构系统对现代技术应用的发展至关重要,例如生物工程(组织工程,药物递送,微观手术,......),包装,数据存储,分子机,智能传感器和执行器等。智能聚合物,通常被称为响应性聚合物,表现出物理或化学变化,响应物理刺激(离子,温度,辐射,光,机械应力,...),化学(特定离子,pH,化学试剂,。 ..),或生物化学(酶,底物,配体,...)性质;有时它们也可以同时响应两个或多个触发动作的组合。在本研究中,考虑了智能聚合物对化学和机械刺激的响应性。特别地,作为通常由溶剂介质携带的化学作用,占流体吸收机构的相互作用和化学触发。此外,在我们的研究中,我们还专注于在介观标尺处提供可检测的机械响应的响应能力,由分子尺度的几何变化(通常是体积膨胀)引起的。通过微机械模型研究经历肿胀​​和显示响应性的聚合物的机制,随后在计算框架中实施,用于预测该类活性材料的机械行为。

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