首页> 外文会议>IEEE International Conference on Solid Dielectrics >Space Charge in Low-density Polyethylene/micro-SiO{sub}2 composite and Low-density Polyethylene/nano-SiO{sub}x composite with different metal electrode pairs
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Space Charge in Low-density Polyethylene/micro-SiO{sub}2 composite and Low-density Polyethylene/nano-SiO{sub}x composite with different metal electrode pairs

机译:低密度聚乙烯/微型SiO {Sub} 2复合材料和低密度聚乙烯/纳米SiO×X复合材料用不同金属电极对中的空间电荷

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Nano-SiO{sub}x and micro-SiO{sub}2 particles were homogeneously dispersed in low-density polyethylene with a method of double-solution mixture. Both kinds of the composites were sputtered with Au and Ag on both surfaces as electrodes, respectively. Space charge in the composites was investigated with pulsed electro-acoustic method (PEA). It is shown that space charge distribution in the sample with different metal electrode pairs relates with the electrode polarity. The amount of hetero-polarity space charge in pure LDPE after being electrically prestressed with Au (+)~Ag(-) electrode pair is greater than that with Au (-)~Ag(+) electrode pair. However, homo-polarity space charge appears in the microcomposite after being electrically prestressed with either Au (+)~Ag (-) or Au (-)~Ag (+) electrode pair, and the amount of space charge increases with micro-SiO{sub}2 content. It also could be seen that the amount of homo-polarity space charge in the microcomposite with Au(-)~Ag(+) electrode pair is greater than that with Au(+)~Ag(-) electrode pair. With electrically prestressing, hetero-polarity space charge appears in the nanocomposite with either Au (+)~Ag(-)or Au(-)~Ag(+) electrode pair and the amount of space charge increases with nano-SiO{sub}x content. In addition, the amount of space charge in the nanocomposite with Au (-)~Ag(+) electrode pair is lower than that with Au(+)~Ag(-) electrode pair. The space charge distribution difference in all samples with different electrode pairs has close relation to electron and (or) hole injection efficiency of different electrode material, as well as charge trapping and detrapping process in the interfaces of the samples.
机译:纳米SiO {Sub} X和Micro-SiO} 2颗粒以双溶液混合物的方法均匀地分散在低密度聚乙烯中。两种复合材料分别在两个表面上用Au和Ag溅射,作为电极。用脉冲电声方法(豌豆)研究了复合材料中的空间电荷。结果表明,具有不同金属电极对的样品中的空间电荷分布与电极极性相关。用Au(+)〜Ag( - )电极对电预应力之后纯LDPE中的杂极性空间电荷的量大于Au( - )〜Ag(+)电极对。然而,在用Au(+)〜Ag( - )或Au( - )〜Ag(+)电极对电预选后,在微型复合材料中出现同型极性空间电荷,并且空间电荷量随微SiO增加{sub} 2内容。可以看出,用Au( - )〜Ag(+)电极对的微型复合材料中的同源极性空间电荷量大于Au(+)〜Ag( - )电极对的微量化合物。通过电预应力,杂体极性空间电荷显示在纳米复合材料中,用Au(+)〜Ag( - )或Au( - )〜Ag(+)电极对,并且空间电荷量与纳米SiO {Sub}增加x内容。另外,具有Au( - )〜Ag(+)电极对的纳米复合材料中的空间电荷量低于Au(+)〜Ag( - )电极对低。具有不同电极对的所有样品中的空间电荷分布差异与不同电极材料的电子和(或)孔注射效率的密切相关,以及在样品的界面中的电荷捕获和脱裂过程。

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