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用于动态微图案模具和可调谐光学的容错电响应表面。

Fault-Tolerant Electro-Responsive Surfaces for Dynamic Micropattern Molds and Tunable Optics.

作者信息

Lin I-Ting, Wang Tiesheng, Zhang Fenghua, Smoukov Stoyan K

机构信息

Department of Materials Science and Metallurgy, University of Cambridge, Cambridge, CB3 0FS, United Kingdom.

Centre for Composite Materials and Structures, Harbin Institute of Technology, Harbin, 150080, People's Republic of China.

出版信息

Sci Rep. 2017 Oct 2;7(1):12481. doi: 10.1038/s41598-017-12899-y.

Abstract

Electrically deformable surfaces based on dielectric elastomers have recently demonstrated controllable microscale roughness, ease of operation, fast response, and possibilities for programmable control. Potential applications include marine anti-biofouling, dynamic pattern generation, and voltage-controlled smart windows. Most of these systems, however, exhibit limited durability due to irreversible dielectric breakdown. Lowering device voltage to avoid this issue is hindered by an inadequate understanding of the electrically-induced wrinkling deformation as a function of the deformable elastic film thickness. Here we report responsive surfaces that overcome these shortcomings: we achieve fault-tolerant behavior based on the ability to self-insulate breakdown faults, and we enhance fundamental understanding of the system by quantifying the critical field necessary to induce wrinkles in films of different thickness and comparing to analytical models. We also observe new capabilities of these responsive surfaces, such as field amplification near local breakdown sites, which enable actuation and wrinkle pattern formation at lower applied voltages. We demonstrate the wide applicability of our responsive, fault-tolerant films by using our system for adjustable transparency films, tunable diffraction gratings, and a dynamic surface template/factory from which various static micropatterns can be molded on demand.

摘要

基于介电弹性体的电可变形表面最近已展现出可控的微观粗糙度、易于操作、快速响应以及可编程控制的可能性。潜在应用包括海洋防污、动态图案生成和电压控制智能窗。然而,这些系统中的大多数由于不可逆的介电击穿而表现出有限的耐久性。由于对作为可变形弹性膜厚度函数的电致皱纹变形理解不足,降低器件电压以避免此问题受到阻碍。在此,我们报告了克服这些缺点的响应表面:我们基于自我绝缘击穿故障的能力实现了容错行为,并且通过量化在不同厚度的薄膜中引发皱纹所需的临界场并与分析模型进行比较,增强了对该系统的基本理解。我们还观察到这些响应表面的新能力,例如局部击穿部位附近的场放大,这使得在较低的施加电压下能够实现驱动和皱纹图案形成。我们通过将我们的系统用于可调透明薄膜、可调衍射光栅以及可根据需要模制各种静态微图案的动态表面模板/工厂,证明了我们的响应式、容错薄膜的广泛适用性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2a3f/5624962/2392e3a3dbec/41598_2017_12899_Fig1_HTML.jpg

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