College of Chemical Engineering, China University of Mining and Technology, Xuzhou, 221008 Jiangsu, People's Republic of China.
College of Chemical Engineering, China University of Mining and Technology, Xuzhou, 221008 Jiangsu, People's Republic of China;
Proc Natl Acad Sci U S A. 2017 Aug 15;114(33):8704-8709. doi: 10.1073/pnas.1704094114. Epub 2017 Jul 31.
Periodic to-and-fro migration is a sophisticated mode of locomotion found in many forms of active matter in nature. Providing a general description of periodic migration is challenging, because many details of animal migration remain a mystery. We study periodic migration in a simpler system using a mechanistic model of a photosensitive, active material in which a stimulus-responsive polymer gel is propelled by chemical waves under the regulation of an illumination gradient sensed by the gel, which plays a role analogous to the environment in periodic animal migration. The reciprocating gel migration results from autonomous transitions between retrograde and direct wave locomotion modes arising from the gradient distribution of the illumination intensity. The local dynamics of the chemical waves modulates the asymmetry between push and pull forces to achieve repeated reorientation of the direction of locomotion. Materials that display similar intelligent, self-adaptive locomotion might be tailored for such functions as drug delivery or self-cleaning systems.
周期性往返迁移是自然界中许多形式的主动物质所具有的一种复杂的运动模式。周期性迁移的一般描述具有挑战性,因为动物迁移的许多细节仍然是个谜。我们使用一种光响应聚合物凝胶在光照梯度下通过化学波推动的光敏活性物质的机械模型来研究周期性迁移,该模型类似于周期性动物迁移中的环境,光照梯度由凝胶感知。往复凝胶迁移是由于光强度梯度分布引起的逆行和直接波运动模式之间的自主转变引起的。化学波的局部动力学调节了推力和拉力之间的不对称性,从而实现了运动方向的反复重新定向。显示类似智能自适应运动的材料可以针对药物输送或自清洁系统等功能进行定制。