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首页> 外文期刊>Nano Energy >Improved energy density and charge-discharge efficiency in solution processed highly defined ferroelectric block copolymer-based dielectric nanocomposites
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Improved energy density and charge-discharge efficiency in solution processed highly defined ferroelectric block copolymer-based dielectric nanocomposites

机译:改善溶液中的能量密度和充放电效率高度明确的铁电嵌段共聚物基介质纳米复合材料

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摘要

The development of light and flexible capacitive energy storage devices with high electrical energy densities is of crucial significance to respond to the ever-rising demands in advanced applications and electricity needs. Incorporation of high dielectric constant ceramic fillers inside the ferroelectric polymer matrix offers great potential to improve the energy density of dielectric materials. However, this approach often suffers from highly reduced breakdown strength caused by the large difference of the matrix and filler dielectric constants together with often poor dispersion of the ceramic additives inside the polymer. Here, we demonstrate a simple method for the preparation of improved polymer-based dielectric nanocomposites based on self-assembly of medium dielectric constant hafnium oxide nanorods using ferroelectric block copolymer. The prepared nanocomposites exhibit both improved discharged energy densities and charge-discharge efficiencies, whereas they preserve their function up to comparable electric fields as the pristine block copolymer. The enhancement of the properties is mostly ascribed to the formation of deeper charge traps due to nanorod induced crosslinking inside amorphous domains and the reduction of ferroelectric loss influenced by creation of an additional paraelectric phase in nanocomposites.
机译:具有高电能密度的光和柔性电容性能存储装置的开发对于响应高级应用和电力需求的不断增长的需求是至关重要的。铁电聚合物基质内的高介电常数陶瓷填料的掺入具有提高介电材料能量密度的潜力。然而,这种方法通常遭受由于基质和填充介电常数的大差异以及聚合物内部陶瓷添加剂的分散差而导致的高度降低的击穿强度。在这里,我们证明了一种基于使用铁电嵌段共聚物的中等介电常数氧化铪纳米棒的自组装制备改进的聚合物基介电纳米复合材料的简单方法。制备的纳米复合材料表现出改进的排出能量密度和充放电效率,而它们将其功能保持在与原始嵌段共聚物的相当电场上。由于纳米棒诱导的非晶结构域内的交联,该性能的增强主要是归因于纳米峰诱导的交联,并通过在纳米复合材料中产生额外的额定电相影响的铁电损耗来降低铁电损耗。

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