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Transparency Enhancement for Photoinitiated Polymerization (UV Curing) through Magnetic Field Alignment in a Piezoresistive Metal/ Polymer Composite

机译:通过压阻金属/聚合物复合材料中的磁场对准提高光引发聚合(UV固化)的透明度

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We use a magnetic field to align nickel particles into stringlike assemblies in urethane oligomer mixtures and create a semitransparent UV-curable nickel particle/ polymer composite with anisotropic electrical conductivity and piezoresistive properties. When the particles are uniformly distributed in the oligourethane matrix, the mixture is moderately conductive at higher particle fractions but becomes insulating once the fraction is below about 5 vol %. With the particle fraction below this threshold and using an external magnetic field, the particles are aligned into continuous pathways through the oligomer mixtures following the magnetic flux lines. The matrix is subsequently cured by UV light. This results in conductivity and piezoresistivity along the alignment direction, while the material is not conducting perpendicular to the alignment direction. The lower particle fraction results in a lower number of absorbers for UV light: the decrease from S to 1 vol % increases optical transmission from 10% to 50% in the UV/vis region. This leads to a shorter photocuring time, typically from tens of seconds to seconds for 300-μm-thick films at a wavelength of 365 nm. We propose that this concept could be applied in areas such as pressure sensors.
机译:我们使用磁场将氨基甲酸乙酯低聚物混合物中的镍粒子排列成线状组件,并创建具有各向异性导电性和压阻特性的半透明的可紫外线固化的镍粒子/聚合物复合材料。当颗粒均匀地分布在低聚乙烷基质中时,该混合物在较高的颗粒分数下具有中等导电性,但是一旦该分数低于约5vol%,则变为绝缘的。在颗粒分数低于该阈值并使用外部磁场的情况下,颗粒沿着磁通量线排列成穿过低聚物混合物的连续路径。随后通过紫外线将基质固化。这导致沿着对准方向的电导率和压阻率,而材料不垂直于对准方向导通。较低的颗粒分数导致用于UV光的吸收剂数量减少:从S减少到1 vol%,在UV / vis区域将光透射率从10%增加到50%。这导致较短的光固化时间,对于波长为365 nm的300μm厚的膜,通常需要数十秒至几秒的时间。我们建议将此概念应用于压力传感器等领域。

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