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Electrical and dielectric properties of barium titanate - polydimethylsiloxane nanocomposite with 0-3 connectivity modified with carbon nanotube (CNT)

机译:碳纳米管(CNT)改性0-3次铬酸钡 - 聚二甲基硅氧烷纳米复合材料的电气和介电性能

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摘要

This study explored the preparation and electrical properties of 0-3 barium titanate/polydimethylsiloxane nanocomposites by dispersing barium titanate nanoparticles (BaTiO3; BT) into the polydimethylsiloxane (PDMS) matrix phase. The effect of barium titanate nanoparticles on electrical properties has been investigated systematically, and the relative permittivity of nanocomposites was found to increase significantly with increasing barium titanate content. Different theoretical models were used to predict the dielectric constant of these composites and compare their experimental value with the theoretical value in order to find an appropriate equation. The result indicated that the dielectric properties of composites are influenced not only by relative permittivity of the components but also dependence on interactions between ceramics and polymers. Furthermore, the preparation and dielectric properties of BT/PDMS nanocomposites modified with carbon nanotube (CNT) were also studied. The dielectric results demonstrate that adding CNT can enhance the relative permittivity of the BT/PDMS composite via improvement of dispersion and distribution of the BT nanoparticles in the PDMS matrix phase. Moreover, the electrical outputs from the BT/PDMS/CNT nanocomposites generator were measured under periodic knocking. The nanocomposites innovatively expand the feasibility of self-powered energy systems for smart sensor and energy harvesting applications.
机译:本研究通过将钛酸钡纳米颗粒(BATIO3; BT)分散到聚二甲基硅氧烷(PDMS)基质相中,探讨了0-3钡钛酸钡/聚二甲基硅氧烷纳米复合材料的制备和电性能。钛酸钡纳米颗粒对电性能的影响已经系统地研究,发现纳米复合材料的相对介电常数随着钛酸钡含量的增加而显着增加。使用不同的理论模型来预测这些复合材料的介电常数,并将其实验值与理论值进行比较,以找到合适的等式。结果表明,复合材料的电介质特性不仅受组分的相对介电常数,而且依赖于陶瓷和聚合物之间的相互作用。此外,还研究了用碳纳米管(CNT)改性的BT / PDMS纳米复合材料的制备和介电性能。介电结果表明,添加CNT可以通过改善PDMS基质相中的BT纳米颗粒的分散和分散来增强BT / PDMS复合物的相对介质。此外,在周期性敲击下测量来自BT / PDMS / CNT纳米复合材料发生器的电输出。纳米复合材料创新地扩展了智能传感器和能量收集应用的自动能源系统的可行性。

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