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Nanostructures and space charge characteristics of MgO/LDPE nanocomposites

机译:MgO / LDPE纳米复合材料的纳米结构和空间电荷特性

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The electrical properties of nanocomposites are closely related to their nanostructures. In order to investigate the nanostructures and space charge characteristics of magnesium oxide (MgO)/low-density polyethylene (LDPE), samples of LDPE with nano-MgO from 0.1 to 2.0 wt% are prepared, as well as pure LDPE. The nanostructures of nanocomposites are investigated by the technology of synchrotron radiation small-angle x-ray scattering (SAXS), and the space charge distributions in nanocomposites and LDPE are measured by the pulsed electro-acoustic (PEA) method. Results of the synchrotron radiation SAXS experiments reveal that there is obvious interphase between the nano-MgO particle and the LDPE matrix, the thickness of which increases along with the increase in nano-MgO concentration. The agglomeration and mass fractal exist in all nanocomposites, and become more obvious at higher concentration. Results of space charge measurements indicate that the apparent trap-controlled mobilities and the apparent trap depths are respectively larger and smaller than those in LDPE during the initial phase of depolarization when the concentrations are 0.1 and 0.5 wt%, and are respectively smaller and larger than those in LDPE when the concentrations are 1.0 and 2.0 wt%. The space charge amount decreases after the addition of nano-MgO. This is mainly due to the introduction of shallow traps which promote the charge recombination in 0.1 and 0.5 wt% MgO/LDPE nanocomposites, and the introduction of deep traps which restrict the charge transportation in 1.0 and 2.0 wt% MgO/LDPE nanocomposites. The space charge characteristics of MgO/LDPE nanocomposites are explained combined with the nanostructures obtained from the synchrotron radiation SAXS experiments.
机译:纳米复合材料的电性能与其纳米结构密切相关。为了研究氧化镁(MgO)/低密度聚乙烯(LDPE)的纳米结构和空间电荷特性,制备了纳米MgO为0.1至2.0 wt%的LDPE样品以及纯LDPE。通过同步辐射小角X射线散射(SAXS)技术研究了纳米复合材料的纳米结构,并通过脉冲电声(PEA)方法测量了纳米复合材料和LDPE中的空间电荷分布。同步加速器辐射SAXS实验的结果表明,纳米MgO颗粒与LDPE基质之间存在明显的中间相,其厚度随纳米MgO浓度的增加而增加。团聚和质量分数维存在于所有纳米复合物中,并且在更高的浓度下变得更加明显。空间电荷测量的结果表明,在去极化初始阶段,当浓度为0.1和0.5 wt%时,表观陷阱控制的迁移率和表观陷阱深度分别比LDPE中的更大和更小,并且分别小于和大于LDPE。浓度为1.0和2.0 wt%时的LDPE中的那些。添加纳米MgO后,空间电荷量减少。这主要是由于引入了浅陷阱,从而促进了0.1和0.5 wt%的MgO / LDPE纳米复合材料中的电荷复合,以及引入了深陷阱,其限制了1.0和2.0 wt%的MgO / LDPE纳米复合材料中的电荷传输。结合从同步辐射SAXS实验获得的纳米结构,解释了MgO / LDPE纳米复合材料的空间电荷特性。

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