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Sandwich-structured polymer nanocomposites with high energy density and great charge–discharge efficiency at elevated temperatures

机译:夹层结构的聚合物纳米复合材料在高温下具有高能量密度和出色的充放电效率

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摘要

The demand for a new generation of high-temperature dielectric materials toward capacitive energy storage has been driven by the rise of high-power applications such as electric vehicles, aircraft, and pulsed power systems where the power electronics are exposed to elevated temperatures. Polymer dielectrics are characterized by being lightweight, and their scalability, mechanical flexibility, high dielectric strength, and great reliability, but they are limited to relatively low operating temperatures. The existing polymer nanocomposite-based dielectrics with a limited energy density at high temperatures also present a major barrier to achieving significant reductions in size and weight of energy devices. Here we report the sandwich structures as an efficient route to high-temperature dielectric polymer nanocomposites that simultaneously possess high dielectric constant and low dielectric loss. In contrast to the conventional single-layer configuration, the rationally designed sandwich-structured polymer nanocomposites are capable of integrating the complementary properties of spatially organized multicomponents in a synergistic fashion to raise dielectric constant, and subsequently greatly improve discharged energy densities while retaining low loss and high charge–discharge efficiency at elevated temperatures. At 150 °C and 200 MV m−1, an operating condition toward electric vehicle applications, the sandwich-structured polymer nanocomposites outperform the state-of-the-art polymer-based dielectrics in terms of energy density, power density, charge–discharge efficiency, and cyclability. The excellent dielectric and capacitive properties of the polymer nanocomposites may pave a way for widespread applications in modern electronics and power modules where harsh operating conditions are present.
机译:电容式储能的新一代高温介电材料的需求已被大功率应用(例如电动汽车,飞机和脉冲电子系统中的功率电子设备暴露于高温)的兴起推动。聚合物电介质的特点是重量轻,可伸缩性,机械柔韧性,高介电强度和出色的可靠性,但它们仅限于相对较低的工作温度。现有的在高温下具有有限能量密度的基于聚合物纳米复合材料的电介质也为实现显着减小能量装置的尺寸和重量提供了主要障碍。在这里,我们报告了三明治结构,这是同时具有高介电常数和低介电损耗的高温介电聚合物纳米复合材料的有效途径。与常规的单层结构相比,合理设计的夹心结构聚合物纳米复合材料能够以协同方式整合空间组织的多组分的互补特性,以提高介电常数,并随后大大提高放电能量密度,同时保持低损耗和低损耗。在高温下具有很高的充放电效率。在150°C和200 MV m -1 (电动汽车应用的运行条件)下,夹层结构的聚合物纳米复合材料在能量密度方面优于最新的基于聚合物的电介质,功率密度,充放电效率和可循环性。聚合物纳米复合材料的优异介电和电容特性可为存在苛刻工作条件的现代电子和功率模块中的广泛应用铺平道路。

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