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用于透明可拉伸电子器件的直接激光写入的不可见液态金属电路。

Visually Imperceptible Liquid-Metal Circuits for Transparent, Stretchable Electronics with Direct Laser Writing.

机构信息

Integrated Soft Materials Lab, Mechanical Engineering, Carnegie Mellon University, Pittsburgh, PA, 15213, USA.

Electrical and Computer Engineering, University of Toronto, Toronto, ON, M5S 3G4, Canada.

出版信息

Adv Mater. 2018 Mar;30(12):e1706937. doi: 10.1002/adma.201706937. Epub 2018 Feb 6.

Abstract

A material architecture and laser-based microfabrication technique is introduced to produce electrically conductive films (sheet resistance = 2.95 Ω sq ; resistivity = 1.77 × 10 Ω m) that are soft, elastic (strain limit >100%), and optically transparent. The films are composed of a grid-like array of visually imperceptible liquid-metal (LM) lines on a clear elastomer. Unlike previous efforts in transparent LM circuitry, the current approach enables fully imperceptible electronics that have not only high optical transmittance (>85% at 550 nm) but are also invisible under typical lighting conditions and reading distances. This unique combination of properties is enabled with a laser writing technique that results in LM grid patterns with a line width and pitch as small as 4.5 and 100 µm, respectively-yielding grid-like wiring that has adequate conductivity for digital functionality but is also well below the threshold for visual perception. The electrical, mechanical, electromechanical, and optomechanical properties of the films are characterized and it is found that high conductivity and transparency are preserved at tensile strains of ≈100%. To demonstrate their effectiveness for emerging applications in transparent displays and sensing electronics, the material architecture is incorporated into a couple of illustrative use cases related to chemical hazard warning.

摘要

介绍了一种材料结构和基于激光的微加工技术,用于生产具有柔软、弹性(应变极限>100%)和光学透明特性的导电薄膜(方阻=2.95 Ω/□;电阻率=1.77×10 -6 Ω·m)。这些薄膜由在透明弹性体上的不可见的网格状排列的液态金属(LM)线组成。与之前在透明 LM 电路中的努力不同,当前的方法能够实现完全不可见的电子设备,这些电子设备不仅具有高透光率(在 550nm 处>85%),而且在典型的照明条件和阅读距离下也是不可见的。这种独特的组合特性是通过激光写入技术实现的,该技术可使 LM 网格图案的线宽和间距分别达到 4.5μm 和 100μm,从而产生具有足够导电性以实现数字功能的网格状布线,但仍远低于视觉感知的阈值。对薄膜的电学、力学、机电和光机电性能进行了表征,发现其在约 100%的拉伸应变下仍保持高导电性和高透明度。为了展示其在透明显示器和传感电子等新兴应用中的有效性,将该材料结构纳入了与化学危险警告相关的几个说明性用例中。

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