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反应凝胶中的机械化学振荡和波。

Mechano-chemical oscillations and waves in reactive gels.

机构信息

Chemical Engineering Department, University of Pittsburgh, Pittsburgh, PA 15261, USA.

出版信息

Rep Prog Phys. 2012 Jun;75(6):066601. doi: 10.1088/0034-4885/75/6/066601. Epub 2012 May 18.

Abstract

We review advances in a new area of interdisciplinary research that concerns phenomena arising from inherent coupling between non-linear chemical dynamics and mechanics. This coupling provides a route for chemical-to-mechanical energy transduction, which enables materials to exhibit self-sustained oscillations and/or waves in both concentration and deformation fields. We focus on synthetic polymer gels, where the chemo-mechanical behavior can be engineered into the material. We provide a brief review of experimental observations on several types of chemo-mechanical oscillations in gels. Then, we discuss methods used to theoretically and computationally model self-oscillating polymer gels. The rest of the paper is devoted to describing results of theoretical and computational modeling of gels that undergo the oscillatory Belousov-Zhabotinsky (BZ) reaction. We discuss a remarkable form of mechano-chemical transduction in these materials, where the application of an applied force or mechanical contact can drive the system to switch between different dynamical behavior, or alter the mechanical properties of the material. Finally, we discuss ways in which photosensitive BZ gels could be used to fabricate biomimetic self-propelled objects. In particular, we describe how non-uniform illumination can be used to direct the movement of BZ gel 'worms' along complex paths, guiding them to bend, reorient and turn.

摘要

我们回顾了一个新的跨学科研究领域的进展,该领域涉及非线性化学动力学和力学之间固有耦合所产生的现象。这种耦合为化学到机械能的转换提供了途径,使材料在浓度和变形场中表现出自维持的振荡和/或波动。我们专注于合成聚合物凝胶,其中化学机械行为可以被设计到材料中。我们简要回顾了凝胶中几种类型的化学机械振荡的实验观察结果。然后,我们讨论了用于理论和计算建模自振荡聚合物凝胶的方法。本文的其余部分致力于描述经历振荡 Belousov-Zhabotinsky(BZ)反应的凝胶的理论和计算建模结果。我们讨论了这些材料中机械化学转导的一种显著形式,其中施加力或机械接触可以使系统在不同动力学行为之间切换,或改变材料的机械性能。最后,我们讨论了光敏 BZ 凝胶如何用于制造仿生自推进物体。特别是,我们描述了如何使用非均匀照明来引导 BZ 凝胶“蠕虫”沿着复杂路径运动,引导它们弯曲、重新定向和转弯。

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