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首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Extremely flexible, printable Ag conductive features on PET and paper substrates via continuous millisecond photonic sintering in a large area
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Extremely flexible, printable Ag conductive features on PET and paper substrates via continuous millisecond photonic sintering in a large area

机译:通过在大面积内连续毫秒的光子烧结,在PET和纸张基材上具有极高的柔性,可印刷的Ag导电特性

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摘要

The development of highly conductive, flexible metallic constituents in patterned geometries has been of paramount interest in various optoelectronic applications. Among a variety of materials, silver nanoparticles have been considered as candidates that meet the physical/chemical requirements for practical applications; but, the issues for applicability to roll-to-roll processes on inexpensive substrates have not been yet resolved. In this study, we demonstrate that the highly flexible, rollable, printable Ag structures, with an electrical resistivity of 8.0 mu Omega cm, are easily formed on a timescale of 10(-3) s on polyethylene terephthalate and paper substrates, by supplying highly intensive photon energies on olate-Ag nanoparticle assemblies. The precise control of the amount of carbon residues, by virtue of sophisticatedly adjustable input of photon energies, allows the formation of well-adhesive metallic films on plastic substrates, without incorporating any additional procedures, enabling extreme flexibility during 10 000 cycles with a bending radius of 1.5 mm. The continuous approach with a moving stage also suggests the potential toward a practical sintering process for instantly generating highly flexible, conductive metallic architectures in a large area.
机译:在图案化的几何形状中开发高导电性,柔性金属成分已成为各种光电应用中的头等大事。在多种材料中,银纳米颗粒被认为是满足实际应用的物理/化学要求的候选材料。但是,尚未解决在廉价的基材上卷对卷工艺的适用性问题。在这项研究中,我们证明了通过提供高强度的聚对苯二甲酸乙二醇酯和纸质基材,很容易在10(-3)s的时间尺度上形成具有8.0μOΩcm电阻率的高度柔性,可卷曲,可印刷的Ag结构。 olate-Ag纳米粒子组件上的高强度光子能量。借助精密可调节的光子能量输入,精确控制碳残留量,可在塑料基板上形成粘合力强的金属膜,而无需采用任何其他程序,从而在弯曲半径为1万次的循环中具有极高的灵活性1.5毫米具有移动阶段的连续方法还表明朝着实际烧结工艺发展的潜力,该烧结工艺可以在大面积上立即生成高度柔性,导电的金属结构。

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