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通过包覆具有可变壳层厚度的钛酸钡纳米线,显著提高聚合物纳米复合材料的储能能力。

Substantial enhancement of energy storage capability in polymer nanocomposites by encapsulation of BaTiO NWs with variable shell thickness.

作者信息

Wang Guanyao, Huang Yanhui, Wang Yuxin, Jiang Pingkai, Huang Xingyi

机构信息

Department of Polymer Science and Engineering, Shanghai Key Laboratory of Electrical Insulation and Thermal Aging, Shanghai Jiao Tong University, Shanghai 200240, China.

出版信息

Phys Chem Chem Phys. 2017 Aug 9;19(31):21058-21068. doi: 10.1039/c7cp04096b.

Abstract

Dielectric polymer nanocomposites have received keen interest due to their potential application in energy storage. Nevertheless, the large contrast in dielectric constant between the polymer and nanofillers usually results in a significant decrease of breakdown strength of the nanocomposites, which is unfavorable for enhancing energy storage capability. Herein, BaTiO nanowires (NWs) encapsulated by TiO shells of variable thickness were utilized to fabricate dielectric polymer nanocomposites. Compared with nanocomposites with bare BaTiO NWs, significantly enhanced energy storage capability was achieved for nanocomposites with TiO encapsulated BaTiO NWs. For instance, an ultrahigh energy density of 9.53 J cm at 440 MV m could be obtained for nanocomposites comprising core-shell structured nanowires, much higher than that of nanocomposites with 5 wt% raw ones (5.60 J cm at 360 MV m). The discharged energy density of the proposed nanocomposites with 5 wt% mTiO@BaTiO-1 NWs at 440 MV m seems to rival or exceed those of some previously reported nanocomposites (mostly comprising core-shell structured nanofillers). More notably, this study revealed that the energy storage capability of the nanocomposites can be tailored by the TiO shell thickness. Finite element simulations were employed to analyze the electric field distribution in the nanocomposites. The enhanced energy storage capability should be mainly attributed to the smoother gradient of dielectric constant between the nanofillers and polymer matrix, which alleviated the electric field concentration and leakage current in the polymer matrix. The methods and results herein offer a feasible approach to construct high-energy-density polymer nanocomposites with core-shell structured nanowires.

摘要

介电聚合物纳米复合材料因其在能量存储方面的潜在应用而备受关注。然而,聚合物与纳米填料之间介电常数的巨大差异通常会导致纳米复合材料的击穿强度显著降低,这不利于提高能量存储能力。在此,利用可变厚度TiO壳层包裹的BaTiO纳米线(NWs)制备介电聚合物纳米复合材料。与具有裸露BaTiO NWs的纳米复合材料相比,具有TiO包裹的BaTiO NWs的纳米复合材料实现了显著增强的能量存储能力。例如,对于包含核壳结构纳米线的纳米复合材料,在440 MV/m时可获得9.53 J/cm³的超高能量密度,远高于含5 wt%原始纳米线的纳米复合材料(在360 MV/m时为5.60 J/cm³)。所提出的含5 wt% mTiO@BaTiO-1 NWs的纳米复合材料在440 MV/m时的放电能量密度似乎可与一些先前报道的纳米复合材料(大多包含核壳结构纳米填料)相媲美或超过它们。更值得注意的是,该研究表明纳米复合材料的能量存储能力可通过TiO壳层厚度进行调整。采用有限元模拟来分析纳米复合材料中的电场分布。能量存储能力的增强应主要归因于纳米填料与聚合物基体之间介电常数的梯度更平缓,这减轻了聚合物基体中的电场集中和漏电流。本文的方法和结果为构建具有核壳结构纳米线的高能量密度聚合物纳米复合材料提供了一种可行的方法。

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