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Achieving polydimethylsiloxane/carbon nanotube (PDMS/CNT) composites with extremely low dielectric loss and adjustable dielectric constant by sandwich structure

机译:通过夹层结构获得介电损耗极低且介电常数可调节的聚二甲基硅氧烷/碳纳米管(PDMS / CNT)复合材料

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摘要

Sandwich-structured composites of polydimethylsiloxane/carbon nanotube (PDMS/CNT) bulk between two neat PDMS thin films with different thicknesses are prepared by the spin-coating method. Taking advantage of CNT's percolation behavior, the composite keeps relatively high dielectric constant (epsilon' = 40) at a low frequency (at 100 Hz). Meanwhile, due to the existence of PDMS isolated out-layers which limits the conductivity of the composite, the composite maintains an extremely low dielectric loss (tan delta = 0.01) (at 100 Hz). Moreover, the same matrix of the outlayer and bulk can achieve excellent interfacial adhesion, and the thickness of the coating layer can be controlled by a multi-cycle way. Then, based on the experimental results, the calculation combining the percolation theory and core-shell model is used to analyze the thickness effect of the coating layer on epsilon'. The obtained relationship between the epsilon' of the composite and the thickness of the coating layer can help to optimize the sandwich structure in order to obtain the adjustable epsilon' and the extremely low tan d. Published by AIP Publishing.
机译:采用旋涂法制备了两种厚度不同的纯PDMS薄膜之间的聚二甲基硅氧烷/碳纳米管(PDMS / CNT)的三明治结构复合材料。利用CNT的渗透行为,该复合材料在低频(100 Hz)下保持相对较高的介电常数(ε'= 40)。同时,由于PDMS隔离层的存在限制了复合材料的电导率,因此复合材料保持了极低的介电损耗(tanδ= 0.01)(在100 Hz时)。而且,相同的外层和块状基质可以实现优异的界面粘合性,并且可以通过多循环方式控制涂层的厚度。然后,基于实验结果,结合渗流理论和核-壳模型进行了计算,以分析涂层对ε的厚度影响。所获得的复合材料的ε和涂层厚度之间的关系可以帮助优化夹心结构,以获得可调节的ε和极低的tan d。由AIP Publishing发布。

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  • 来源
    《Applied Physics Letters》 |2018年第5期|052902.1-052902.5|共5页
  • 作者单位

    Univ Paris Saclay, Lab Mecan Sols Struct & Mat MSSMat, CNRS UMR 8579, Ecole Cent Supelec, Grande Voie Vignes, F-92290 Chatenay Malabry, France;

    Univ Paris Saclay, Lab Mecan Sols Struct & Mat MSSMat, CNRS UMR 8579, Ecole Cent Supelec, Grande Voie Vignes, F-92290 Chatenay Malabry, France;

    Univ Paris Saclay, Lab Mecan Sols Struct & Mat MSSMat, CNRS UMR 8579, Ecole Cent Supelec, Grande Voie Vignes, F-92290 Chatenay Malabry, France;

    Univ Paris Saclay, Lab Mecan Sols Struct & Mat MSSMat, CNRS UMR 8579, Ecole Cent Supelec, Grande Voie Vignes, F-92290 Chatenay Malabry, France;

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  • 正文语种 eng
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