Achieving favorable dielectric properties in polymer-based blends by morphology collaboration of spherical Al2O3 and catenulate topologically aesthetic CuO

IF 1.9 4区 材料科学 Q3 Materials Science Journal of the Australian Ceramic Society Pub Date : 2022-08-29 DOI:10.1007/s41779-022-00792-5
Zhiguo He
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Abstract

To gain high dielectric constant, polymer composites with 1D fillers are researched for energy storage. However, high leakage conduction from polymer/filler interface and filler interconnection can induce high dielectric loss. For high dielectric constant and low dielectric loss, in this work, we raised a strategy of morphological synergy of fillers (1D catenulate semi-conductive CuO nano-filler and 0D insulating alumina nano-particles) to fabricate polymer-based ternary composites. Instead of 0D CuO, 1D CuO nano-chains with the improved specific surface area were employed for high dielectric constant via polymer/CuO interface polarization. Spherical alpha-alumina nano-particles were used for reducing polymer/CuO interface leakage conduction and depressing CuO percolation to gain low dielectric loss. Compared with rather high dielectric constant and dielectric loss in polymer/CuO binary composites, moderately high dielectric constant and rather low dielectric loss were achieved in ternary composites. Via excellent synergy of CuO and alumina, ternary composites showed more promising dielectric properties. Ternary composite with 9 wt% CuO and 3 wt% alumina exhibited a high dielectric constant of ~ 64 and low dielectric loss of ~ 0.16 at 20 Hz. This work might pave a road for large-scale preparation of high-performance composite dielectrics by morphological synergy of fillers.

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通过球形Al2O3和链状拓扑美观的CuO的形态协同作用,在聚合物基共混物中获得良好的介电性能
为了获得高介电常数,研究了一维填料聚合物复合材料储能技术。然而,聚合物/填料界面和填料互连的高漏导会导致高介电损耗。为了获得高介电常数和低介电损耗,我们提出了一种填料形态协同的策略(1D串链状半导电CuO纳米填料和0D绝缘氧化铝纳米颗粒)来制备聚合物基三元复合材料。采用提高了比表面积的一维CuO纳米链代替0D CuO,通过聚合物/CuO界面极化获得高介电常数。采用球形α -氧化铝纳米颗粒降低聚合物/CuO界面漏导,抑制CuO渗透,获得低介电损耗。与聚合物/CuO二元复合材料较高的介电常数和介电损耗相比,三元复合材料具有较高的介电常数和较低的介电损耗。通过CuO和氧化铝的良好协同作用,三元复合材料表现出更有前景的介电性能。含9 wt% CuO和3 wt%氧化铝的三元复合材料在20 Hz时具有~ 64的高介电常数和~ 0.16的低介电损耗。本研究为利用填料的形态协同作用大规模制备高性能复合电介质铺平了道路。
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来源期刊
Journal of the Australian Ceramic Society
Journal of the Australian Ceramic Society MATERIALS SCIENCE, CERAMICS-
CiteScore
3.20
自引率
5.30%
发文量
1
审稿时长
>12 weeks
期刊介绍: Publishes high quality research and technical papers in all areas of ceramic and related materials Spans the broad and growing fields of ceramic technology, material science and bioceramics Chronicles new advances in ceramic materials, manufacturing processes and applications Journal of the Australian Ceramic Society since 1965 Professional language editing service is available through our affiliates Nature Research Editing Service and American Journal Experts at the author''s cost and does not guarantee that the manuscript will be reviewed or accepted
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