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High dielectric and breakdown properties obtained in a PVDF based nanocomposite with sandwich structure at high temperature via all-2D design

机译:通过全-D设计在高温下在高温下的PVDF基纳米复合材料中获得的高介电和击穿性能

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A high relative permittivity and breakdown strength are important to the high energy storage of dielectrics. However, in homogeneous composites, electric tree growth leads to premature breakdown. The thermal breakdown of a polymer matrix from excessive heat accumulation results in a low breakdown strength of the composites. In this work, polymer/2D MXene/2D BN nanocomposites were fabricated in a sandwich construction. Ti3C2 nanosheets with a high electric conductivity and stiffness, as well as hexagonal BN (h-BN) nanosheets with an ultrahigh thermal conductivity and breakdown strength, were employed as fillers. Polyvinylidene fluoride (PVDF) was used as the matrix. A mild interface polarization between MXene and PVDF endows the composite with the desirable dielectric properties. Charge injection from the electrodes can be depressed owing to BN in two outer sub-layers, and electric tree growth across the thickness can be impeded due to the interface barrier effect between two adjacent sub-layers. A high breakdown property was obtained. An acceptable temperature-dependence of relative permittivity and breakdown strength was gained and is ascribed to heat evacuation from MXene and BN. The inhomogeneous composite is superior to the homogeneous counterpart. The optimized sandwich composite has a breakdown strength of 235 MV m(-1) and relative permittivity of 24@1 kHz at 140 degrees C. This work might open up the way for the large-scale preparation of promising composite dielectrics.
机译:高相对介电常数和击穿强度对于电介质的高储能来说是重要的。然而,在均匀的复合材料中,电树生长导致过早分解。聚合物基质的热分解来自过量的蓄热导致复合材料的低击穿强度。在这项工作中,在三明治结构中制造了聚合物/ 2D mxene / 2D BN纳米复合材料。用高导电性和刚度的Ti3C2纳米片以及具有超高导热率和击穿强度的六边形BN(H-BN)纳米片,用作填料。将聚偏二氟乙烯(PVDF)用作基质。 MxENE和PVDF之间的温和界面极化将复合材料与所需的介电性能赋予。由于两个外部子层中,可以使来自电极的电荷注入来自电极,并且由于两个相邻的子层之间的界面阻挡效应,可以阻碍厚度的电树长。获得了高击穿特性。获得了相对介电常数和击穿强度的可接受的温度依赖性,并归因于从MxENE和Bn热排出。非均匀复合材料优于均匀的对应物。优化的夹心复合材料具有235mV m(-1)的击穿强度,并且在140℃下的24×1 kHz的相对介电常数。这项工作可能会为大规模制备有前途的复合电介质而开辟道路。

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