Sychov Maxim, Guan Xingyu, Mjakin Sergey, Boridko Lyubov, Khristyuk Nikolay, Gravit Marina, Diachenko Semen
Department of Theoretical Fundamentals of Materials Science, Saint-Petersburg State Institute of Technology, 190013 St. Petersburg, Russia.
Institute of Silicate Chemistry of NRC "Kurchatov Institute", 191015 St. Petersburg, Russia.
Nanomaterials (Basel). 2024 Jul 22;14(14):1232. doi: 10.3390/nano14141232.
Two ranges of dielectric permittivity () increase in polymer composites upon the modification of BaTiO filler with multiwalled carbon nanotubes (MWCNTs) are shown for the first time. The first increase in permittivity is observed at low MWCNT content in the composite (approximately 0.07 vol.%) without a considerable increase in dielectric loss tangent and electrical conductivity. This effect is determined by the intensification of filler-polymer interactions caused by the nanotubes, which introduce Brønsted acidic centers on the modified filler surface and thus promote interactions with the cyanoethyl ester of polyvinyl alcohol (CEPVA) polymer binder. Consequently, the structure of the composites becomes more uniform: the permittivity increase is accompanied by a decrease in the lacunarity (nonuniformity) of the structure and an increase in scale invariance, which characterizes the self-similarity of the composite structure. The permittivity of the composites in the first range follows a modified Lichtenecker equation, including the content of Brønsted acidic centers as a parameter. The second permittivity growth range features a drastic increase in the dielectric loss tangent and conductivity corresponding to the percolation effect with the threshold at 0.3 vol.% of MWCNTs.
首次展示了在使用多壁碳纳米管(MWCNT)对BaTiO填料进行改性后,聚合物复合材料中介电常数()增加的两个范围。在复合材料中MWCNT含量较低(约0.07体积%)时观察到介电常数的首次增加,此时介电损耗角正切和电导率没有显著增加。这种效应是由纳米管引起的填料 - 聚合物相互作用增强所决定的,纳米管在改性填料表面引入了布朗斯台德酸性中心,从而促进了与聚乙烯醇氰基乙酯(CEPVA)聚合物粘合剂的相互作用。因此,复合材料的结构变得更加均匀:介电常数的增加伴随着结构空隙率(不均匀性)的降低和尺度不变性的增加,尺度不变性表征了复合材料结构的自相似性。第一范围内复合材料的介电常数遵循修正的 Lichtenecker 方程,其中包括布朗斯台德酸性中心的含量作为一个参数。第二个介电常数增长范围的特征是介电损耗角正切和电导率急剧增加,这对应于渗流效应,阈值为0.3体积%的MWCNT。