Zhou Juanjuan, Zhou Wenying, Yuan Mengxue, Dong Xinbo, Zhang Jiebing, Zhang Xuejiao, Zhang Yanqing, Chen Xiaolong, Chen Yanrong, Liu Xiangrong
School of Chemistry and Chemical Engineering, Xi'an University of Science & Technology, Xi'an 710054, China.
Department of Materials Science and Engineering, Pennsylvania State University, University Park, PA 16802, USA.
Nanomaterials (Basel). 2023 Jan 3;13(1):211. doi: 10.3390/nano13010211.
An insulating shell on the surface of conductive particles is vital for restraining the dielectric loss and leakage current of polymer composites. So as to inhibit the enormous loss and conductivity of pristine nickel (Ni)/poly(vinylidene fluoride)(PVDF) composites but still harvest a high dielectric permittivity () when filler loading approaches or exceeds the percolation threshold (), pristine Ni particles were covered by a layer of titanium dioxide (TiO) shell via a sol-gel approach, and then they were composited with PVDF. The impacts of the TiO coating on the dielectric performances of the Ni/PVDF composites were explored as a function of the filler concentration, the shell thickness and frequency. In addition, the dielectric performances were fitted using the Havriliak-Negami (H-N) equation in order to further understand the TiO shell's effect on polarization mechanism in the composites. The Ni@TiO/PVDF composites exhibit high and enhanced breakdown strength () but remarkably suppressed loss and conductivity when compared with pristine Ni/PVDF because the TiO shell can efficiently stop the direct contact between Ni particles thereby suppressing the long-range electron transportation. Further, the dielectric performances can be effectively tuned through finely adjusting the TiO shell' thickness. The resulting Ni@TiO/PVDF composites with high and but low loss show appealing applications in microelectronics and electrical fields.
导电颗粒表面的绝缘壳对于抑制聚合物复合材料的介电损耗和漏电流至关重要。为了抑制原始镍(Ni)/聚偏氟乙烯(PVDF)复合材料的巨大损耗和电导率,但在填料负载接近或超过渗流阈值()时仍能获得高介电常数(),通过溶胶-凝胶法在原始Ni颗粒上覆盖一层二氧化钛(TiO₂)壳,然后将它们与PVDF复合。研究了TiO₂涂层对Ni/PVDF复合材料介电性能的影响,作为填料浓度、壳厚度和频率的函数。此外,使用Havriliak-Negami(H-N)方程对介电性能进行拟合,以进一步了解TiO₂壳对复合材料中极化机制的影响。与原始Ni/PVDF相比,Ni@TiO₂/PVDF复合材料表现出高介电常数和增强的击穿强度(),但损耗和电导率显著降低,因为TiO₂壳可以有效地阻止Ni颗粒之间的直接接触,从而抑制长程电子传输。此外,通过精细调整TiO₂壳的厚度,可以有效地调节介电性能。由此得到的具有高介电常数和击穿强度但低损耗的Ni@TiO₂/PVDF复合材料在微电子和电场领域具有诱人的应用前景。