张琛, 吕泽鹏, 徐子航, 曹丹, 张馨月, 吴锴. 直流电压下PDMS/SiO2纳米复合材料的电荷积聚和输运特性[J]. 中国电机工程学报, 2025, 45(10): 4055-4066. DOI: 10.13334/j.0258-8013.pcsee.232669
引用本文: 张琛, 吕泽鹏, 徐子航, 曹丹, 张馨月, 吴锴. 直流电压下PDMS/SiO2纳米复合材料的电荷积聚和输运特性[J]. 中国电机工程学报, 2025, 45(10): 4055-4066. DOI: 10.13334/j.0258-8013.pcsee.232669
ZHANG Chen, LYU Zepeng, XU Zihang, CAO Dan, ZHANG Xinyue, WU Kai. Space Charge Accumulation and Transport in PDMS/SiO2 Nanocomposites Under DC Voltages[J]. Proceedings of the CSEE, 2025, 45(10): 4055-4066. DOI: 10.13334/j.0258-8013.pcsee.232669
Citation: ZHANG Chen, LYU Zepeng, XU Zihang, CAO Dan, ZHANG Xinyue, WU Kai. Space Charge Accumulation and Transport in PDMS/SiO2 Nanocomposites Under DC Voltages[J]. Proceedings of the CSEE, 2025, 45(10): 4055-4066. DOI: 10.13334/j.0258-8013.pcsee.232669

直流电压下PDMS/SiO2纳米复合材料的电荷积聚和输运特性

Space Charge Accumulation and Transport in PDMS/SiO2 Nanocomposites Under DC Voltages

  • 摘要: 介电弹性体(dielectric elastomers,DE)常与柔性电极配合广泛应用于聚合物换能设备中。在高压直流作用下DE材料中的空间电荷积聚和输运过程会引起局部电场畸变,加速绝缘老化及损伤失效,进而影响换能设备长期可靠运行。该文通过红外光谱、热刺激电流、宽带介电谱、电导测量和直流击穿测试方法表征聚二甲基硅氧烷(polydimethylsiloxane,PDMS)及其纳米复合材料的宏观介电性能;采用电声脉冲法(pulse electroacoustic method,PEA)得到20 kV/mm下不同样品的动态空间电荷分布。结果表明,通过添加适量的纳米二氧化硅(SiO2)可以有效降低PDMS低频下的介电损耗,降低直流电导率,提高直流击穿场强。其二,在较高掺杂浓度(> 2 phr)的复合材料中,经过表面处理的纳米粒子由于疏水基团相互排斥在PDMS中具有更好的分散性,击穿和电导性能仍有所缓慢提升。此外,热刺激电流和多层阻挡结构的空间电荷测量结果表明引入纳米SiO2增大了深陷阱电荷量和陷阱密度,降低了PDMS的离子电离率和负载流子迁移率,进一步解释了直流高压下复合材料中的空间电荷积聚得到抑制的现象。研究通过添加纳米填料改善直流电压下PDMS的绝缘性能,可用于提升换能装置中DE材料的综合性能。

     

    Abstract: Dielectric elastomers (DE) with compliant electrodes are widely employed in polymer energy transducers. Under high DC electric field, the space charge accumulation and transport process in DE materials will cause the local electric field distortion, which accelerates the insulation aging, damage and failure, further affecting the long-term reliable operation of energy transducer. In this paper, the macroscopic dielectric properties of polydimethylsiloxane (PDMS) and its nanocomposites are characterized by infrared spectroscopy, thermally stimulated depolarization current (TSDC), broadband dielectric spectroscopy, conduction current measurements and breakdown tests. Based on the pulse electroacoustic method (PEA), space charge characteristics of the materials are measured at 20 kV/mm. The results show that the introduction of an appropriate amount of nano silica can reduce the dielectric loss of PDMS at low frequency area, decrease the conductivity and increase the DC breakdown strength. Second, in nanocomposites with higher doping concentration (> 2 phr), the surface-treated particles have better dispersion in PDMS due to mutual repulsion of hydrophobic groups, which still improves breakdown and conductivity performances slowly. In addition, the TSDC and multi-layer barrier structure space charge measurement results show that adding nano silica also leads to an increase in both trap charge amount and trap density, and a reduction of the ionization rate and negative carrier mobility, providing an explanation for the suppression

     

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