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能够随光律动的微凝胶。

Microgel that swims to the beat of light.

机构信息

DWI - Leibniz-Institut for Interactive Materials, RWTH university, Forckenbeckstr. 50, D-52056, Aachen, Germany.

Institut of Technical and Macromolecular Chemistry der RWTH Aachen, Forckenbeckstr. 50, D-52056, Aachen, Germany.

出版信息

Eur Phys J E Soft Matter. 2021 Jun 15;44(6):79. doi: 10.1140/epje/s10189-021-00084-z.

Abstract

Complementary to the quickly advancing understanding of the swimming of microorganisms, we demonstrate rather simple design principles for systems that can mimic swimming by body shape deformation. For this purpose, we developed a microswimmer that could be actuated and controlled by fast temperature changes through pulsed infrared light irradiation. The construction of the microswimmer has the following features: (i) it is a bilayer ribbon with a length of 80 or 120 [Formula: see text]m, consisting of a thermo-responsive hydrogel of poly-N-isopropylamide coated with a 2-nm layer of gold and equipped with homogeneously dispersed gold nanorods; (ii) the width of the ribbon is linearly tapered with a wider end of 5 [Formula: see text]m and a tip of 0.5 [Formula: see text]m; (iii) a thickness of only 1 and 2 [Formula: see text]m that ensures a maximum variation of the cross section of the ribbon along its length from square to rectangular. These wedge-shaped ribbons form conical helices when the hydrogel is swollen in cold water and extend to a filament-like object when the temperature is raised above the volume phase transition of the hydrogel at [Formula: see text]. The two ends of these ribbons undergo different but coupled modes of motion upon fast temperature cycling through plasmonic heating of the gel-objects from inside. Proper choice of the IR-light pulse sequence caused the ribbons to move at a rate of 6 body length/s (500 [Formula: see text]m/s) with the wider end ahead. Within the confinement of rectangular container of 30 [Formula: see text]m height and 300 [Formula: see text]m width, the different modes can be actuated in a way that the movement is directed by the energy input between spinning on the spot and fast forward locomotion.

摘要

除了对微生物游动的快速理解,我们还展示了通过身体形状变形来模拟游动的系统的相当简单的设计原则。为此,我们开发了一种微游泳者,它可以通过快速的温度变化通过脉冲红外光照射来驱动和控制。微游泳者的结构具有以下特点:(i)它是一个双层带,长度为 80 或 120μm,由聚-N-异丙基丙烯酰胺的热敏水凝胶组成,涂有 2nm 厚的金层,并均匀分散有金纳米棒;(ii)带的宽度呈线性锥形,较宽的一端为 5μm,尖端为 0.5μm;(iii)厚度仅为 1 和 2μm,确保沿其长度的带的横截面最大变化从正方形到矩形。当水凝胶在冷水中膨胀时,这些楔形带形成锥形螺旋,当温度升高到水凝胶的体积相变温度以上时,它们延伸到线状物体。当通过凝胶物体的等离子体加热从内部快速进行温度循环时,这些带的两端会经历不同但耦合的运动模式。适当选择 IR 光脉冲序列会导致带以 6 个体长/秒(500μm/s)的速度前进,较宽的一端在前。在 30μm 高度和 300μm 宽度的矩形容器的限制内,可以以通过在原地旋转和快速前进运动之间输入能量来控制运动的方式来激活不同的模式。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6eb5/8206062/e04d9afd85ff/10189_2021_84_Fig1_HTML.jpg

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