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Nanoscale Controlled Oxidation of Liquid Metals for Stretchable Electronics and Photonics

机译:纳米级控制液体金属的可拉伸电子和光子学的氧化

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摘要

Liquid metals based on gallium have attracted considerable attention for soft and bioelectronics, thanks to their excellent combination of stretchability and conductivity. Nevertheless, owing to their large surface tension, these materials are notoriously difficult to pattern and shape into thin continuous films, or nanoscale 2D architectures, hindering practical use in systems with reduced dimensions. Herein, thanks to fine control in both substrate surface state and oxidation dynamics, a process for producing stretchable gallium-based conducting films with percolation down to 90 nm thickness is presented. By further combining this process with lithography, it is also demonstrated that the approach enables, for the first time, stable stretchable gallium-based optical metasurfaces with tunable resonance in the infrared. It is shown that oxygen partial pressure during evaporation determines the initial film percolation via an interplay between oxidation and dewetting. With this approach, conducting films with relative resistance change as low as 3% over 50% strain, with an excellent stability over 15k cycles are also demonstrated. Tunable soft optical metasurfaces with sub-micrometer feature sizes are also realized, paving the way toward a novel paradigm in soft electronics and photonics.
机译:由于其具有优异的拉伸性和导电性的组合,基于镓的液体金属吸引了柔软和生物电联的能力。尽管如此,由于其表面张力大,这些材料难以难以将薄薄的连续薄膜(纳米级2D架构)造成难以造成难以造成的,并且在具有降低的尺寸的系统中妨碍实际使用。这里,由于衬底表面状态和氧化动力学中的微量控制,提出了一种用于产生耐受耐受渗透到90nm厚度的可拉伸镓的导电膜的方法。通过进一步将该过程与光刻相结合,还证明了该方法使得第一次稳定的可拉伸镓基光学元件,红外线中可调谐共振。结果表明,蒸发过程中的氧分压通过氧化和脱水之间的相互作用来确定初始膜渗滤。利用这种方法,还证明,具有相对电阻变化的电阻变化的薄膜具有超过50%的菌株的优异稳定性。还实现了具有亚微米特征尺寸的可调谐软光学元件,铺平了柔软电子和光子的新颖范式。

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  • 来源
    《Advanced Functional Materials》 |2021年第3期|2006711.1-2006711.10|共10页
  • 作者单位

    Ecole Polytech Fed Lausanne EPFL Lab Photon & Fiber Devices CH-1015 Lausanne Switzerland;

    Ecole Polytech Fed Lausanne EPFL Lab Photon & Fiber Devices CH-1015 Lausanne Switzerland;

    Ecole Polytech Fed Lausanne EPFL Lab Photon & Fiber Devices CH-1015 Lausanne Switzerland|MIT Res Lab Elect 77 Massachusetts Ave Cambridge MA 02139 USA;

    Ecole Polytech Fed Lausanne EPFL Ctr Neuroprosthet Inst Bioengn Inst Microengn Lab Soft Bioelect Interfaces Berta CH-1202 Geneva Switzerland;

    Ecole Polytech Fed Lausanne EPFL Lab Photon & Fiber Devices CH-1015 Lausanne Switzerland;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    intrinsically stretchable; liquid metals; metasurface; oxidation dynamics; percolation;

    机译:本质上伸展;液态金属;元表面;氧化动力学;渗透;

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