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Enhancement of DC breakdown performance of LDPE films based on silver nanoparticle surface modification of biomimetic dopamine technology

机译:基于银纳米粒子表面改性的基于银纳米粒子技术的LDPE薄膜直流击穿性能的增强

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摘要

Low density polyethylene (LDPE) film samples with the surface treatment by silver nanoparticles based on the biomimetic dopamine technology are obtained and the influence of the treatment on the space charge behavior as well as DC breakdown performance of the selected insulating system is studied. The results obtained by the energy dispersive spectrometer and the scanning electron microscope indicate that Ag particles with nanoscale or larger size form and distribute uniformly on the surface of LDPE modified in the dopamine solution, silver nitrate solution (AgNO_3) and dopamine solution in sequence. Space charge profile measured by the pulsed electro-acoustic method shows that homo-charge injection is suppressed with proper surface treatment. DC breakdown strength increases initially and then decreases with the increase of the size of Ag particles. The electrical breakdown strength of the specimen D6-Ag1-D24 is the highest, which increases by 9.5% compared with that of untreated LDPE. Finally, it is considered that the treatment of LDPE based on the biomimetic dopamine technology changes the chemical and physical properties of the surface through forming a three-layer structure, which plays a similar role as the nano-dielectrics. Such treatment can impact the space charge injection and accumulation, and further the corresponding DC breakdown strength, which provides a novel method to optimize the dielectric strength of the polymeric insulating materials.
机译:获得了基于仿生多巴胺技术的银纳米粒子的表面处理的低密度聚乙烯(LDPE)膜样品,研究了对空间充电行为的影响以及所选择的绝缘系统的DC击穿性能。通过能量分散光谱仪和扫描电子显微镜获得的结果表明Ag颗粒具有纳米级或更大尺寸的形式,并均匀地分布在多巴胺溶液中改性的LDPE的表面,硝酸银溶液(AgNO_3)和多巴胺溶液中的序列。通过脉冲电声方法测量的空间电荷曲线表明,具有适当的表面处理抑制了同种异性喷射。直流击穿强度最初增加,然后随着Ag颗粒的尺寸的增加而降低。样品D6-AG1-D24的电击穿强度最高,与未经处理的LDPE相比,其增加了9.5%。最后,认为基于仿生多巴胺技术的LDPE治疗通过形成三层结构来改变表面的化学和物理性质,其在纳米电介质中起着类似的作用。这种治疗可以影响空间电荷注入和积聚,进一步的相应DC击穿强度提供了一种优化聚合物绝缘材料的介电强度的新方法。

著录项

  • 来源
    《Journal of materials science》 |2020年第14期|11560-11568|共9页
  • 作者单位

    Electric Power Research Institute Yunnan Power Gird Co. Ltd. Kunming 650217 Yunnan China;

    State Key Laboratory of Electrical Insulation and Power Equipment Xi'an Jiaotong University Xi'an 710049 Shaanxi China;

    Xi'an University of Technology Xi'an 710048 Shaanxi China;

    State Key Laboratory of Electrical Insulation and Power Equipment Xi'an Jiaotong University Xi'an 710049 Shaanxi China;

    Electric Power Research Institute Yunnan Power Gird Co. Ltd. Kunming 650217 Yunnan China;

    State Key Laboratory of Electrical Insulation and Power Equipment Xi'an Jiaotong University Xi'an 710049 Shaanxi China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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