Template-Free Preparation of Thermoresponsive Mag-netic Cilia Compatible with Biological Conditions.

Aline Grein-Iankovski, A. Graillot, M. Radiom, W. Loh, J. Berret
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Abstract

Bio-inspired materials are commonly used in the development of functional devices. The fabrication of artificial cilia mimicking the biological functions has emerged as a promising strategy for fluid manipulation in miniaturized systems. In this study, we propose a different physicochemical insight for the preparation of magnetic cilia based on the temperature-triggered reversible assembly of coated iron oxide nanoparticles in a bio-compatible template-free approach. The length of the prepared cilia could be tuned between 10 and 100 microns reaching aspect ratios up to 100 in a very dense array of flexible structures with persistence lengths around 8 microns. Magnetic actuation of the cilia revealed robust structures (over several hours of actuation) with a wide range of bending amplitudes resulting from high susceptibility of the filaments. The results demonstrate that the proposed strategy is an efficient and versatile alternative for templated fabrication methods and producing cilia with remarkable characteristics and dimensions within the template-free approaches.
与生物条件相容的热响应磁性纤毛的无模板制备。
仿生材料通常用于功能设备的开发。制造模拟生物功能的人造纤毛已成为微型系统中流体操纵的一种有前途的策略。在这项研究中,我们提出了一种不同的物理化学观点,用于制备磁性纤毛,该方法基于生物相容性无模板方法中涂层氧化铁纳米颗粒的温度触发可逆组装。所制备的纤毛的长度可以在10到100微米之间调整,在一个非常密集的柔性结构阵列中,长宽比可达100,持久长度约为8微米。纤毛的磁驱动显示出坚固的结构(超过几个小时的驱动),由于长丝的高敏感性,具有宽范围的弯曲幅度。结果表明,所提出的策略是一种高效和通用的替代模板制造方法,并在无模板方法中生产具有显著特征和尺寸的纤毛。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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