Venkataramanachar Bhavana B, Li Jianing, Islam Tanveer Ul, Wang Ye, den Toonder Jaap M J
Microsystems Section, Mechanical Engineering, Eindhoven University of Technology, Eindhoven 5612 AZ, The Netherlands.
Institute for Complex Molecular Systems, Eindhoven University of Technology, Eindhoven 5612 AZ, The Netherlands.
Nano Lett. 2023 Oct 25;23(20):9203-9211. doi: 10.1021/acs.nanolett.3c00819. Epub 2023 Jul 19.
Evolution has produced natural systems that generate motion and sense external stimuli at the micro- and nanoscales. At extremely small scales, the intricate motions and large deformations shown by these biosystems are due to a tipping balance between their structural compliance and the actuating force generated in them. Artificially mimicking such ingenious systems for scientific and engineering applications has been approached through the development and use of different smart materials mostly limited to microscale dimensions. To push the application range down to the nanoscale, we developed a material preparation process that yields a library of nanomagnetic elastomers with high magnetic particle concentrations. Through this process, we have realized a material with the highest magnetic-to-elastic force ratio, as is shown by an extensive mechanical and magnetic characterization of the materials. Furthermore, we have fabricated and actuated micro- and nanostructures mimicking cilia, demonstrating the extreme compliance and responsiveness of the developed materials.
进化产生了在微观和纳米尺度上产生运动并感知外部刺激的自然系统。在极小的尺度下,这些生物系统所展现出的复杂运动和大变形是由于其结构柔顺性与其中产生的驱动力之间的微妙平衡。通过开发和使用大多限于微米尺度的不同智能材料,人们已尝试人为模仿此类精巧系统以用于科学和工程应用。为了将应用范围拓展至纳米尺度,我们开发了一种材料制备工艺,该工艺可生成具有高磁粒子浓度的纳米磁性弹性体库。通过这一工艺,我们实现了一种具有最高磁弹比的材料,这在对材料进行的广泛力学和磁性表征中得到了体现。此外,我们制造并驱动了模仿纤毛的微纳结构,展示了所开发材料的极高柔顺性和响应性。