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Nanodielectics: How does the presence of interfaces influence behaviour?

机译:纳米电学:界面的存在如何影响行为?

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Nanocomposites are composed of host and guest materials in general. They should be fabricated so that they may be endowed with superb performances of the guest filler materials, while keeping original performances of the host materials. In general, inorganic materials are excellent in optical, electrical, mechanical and thermal properties, while organic materials are superb in light weight, flexibility, and processability. Such performances for both materials can be transferred, complementarily, to nanocomposites. Furthermore, novel performances that neither of them holds by nature will possibly appear in newly fabricated nanocomposites. There are three kinds of combination as for hosts and guests, i.e. inorganic-inorganic, inorganic-organic, and organic-organic composite systems. The materials that attract most attention to-date are nanocomposites that consist of organic polymers as host and inorganic substances as guest. This field was pioneered by the successful invention of polyamide/organic clay nanocomposites in 1990's. Much attention was directed toward mechanical and optical properties in the beginning. Furthermore, recent investigation is oriented also to performances including gas barrier, lubrication, thermal endurance, heat radiation, electrical conductivity, electrical insulation, aiming at drastic changes in such performances that are expected to appear by controlling material structures in nanometer scale in self-assembly mode. Investigation of various polymer nanocomposites has been intensively made on permittivity, loss tangent, electrical conductivity, space charge, TSC, dielectric breakdown, treeing breakdown (short time breakdown and treeing V-t characteristics), partial discharge (PD) resistance, electroluminescence and any other relevant characteristics. It is now recognized that all the performances as indicated above show the superiority of nanocomposites to conventional composites and especially the improvement of PD resistance, the prolon-nation of treeing lifetime, and the suppression of space charge formation are most prominent among them as nanocomposites. New application innovation for power apparatus is certainly expected through polymer nanocomposites.
机译:纳米复合材料通常由主体和客体材料组成。它们应该被制造成使得它们可以赋予客体填充材料优异的性能,同时保持主体材料的原始性能。通常,无机材料的光学,电学,机械和热学性能优异,而有机材料的轻质,柔韧性和可加工性极佳。两种材料的这种性能可以互补地转移到纳米复合材料上。此外,它们都不具有自然的新颖性能可能会出现在新制造的纳米复合材料中。主机和来宾有三种组合,即无机-无机,无机-有机和有机-有机复合系统。迄今为止,最受关注的材料是由有机聚合物作为主体和无机物质作为客体的纳米复合材料。该领域是1990年代成功发明聚酰胺/有机粘土纳米复合材料的先锋。在开始时,很多注意力都集中在机械和光学性能上。此外,最近的研究还针对包括阻气性,润滑性,耐热性,散热性,导电性,电绝缘性在内的性能,旨在通过自组装控制纳米级的材料结构来预期这种性能的急剧变化。模式。已经对介电常数,损耗角正切,电导率,空间电荷,TSC,介电击穿,树木击穿(短时击穿和树木击穿Vt特性),局部放电(PD)电阻,电致发光和任何其他相关问题进行了深入的研究。特征。现在已经认识到,上述所有性能均显示出纳米复合材料相对于常规复合材料的优越性,尤其是作为纳米复合材料,其中最突出的是PD抗性的改善,树木寿命的延长以及对空间电荷形成的抑制。肯定会通过聚合物纳米复合材料实现功率设备的新应用创新。

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