Hu Feng, An Lu, Chivate Aditya Tushar, Guo Zipeng, Khuje Saurabh Vishwas, Huang Yulong, Hu Yong, Armstrong Jason, Zhou Chi, Ren Shenqiang
Department of Mechanical and Aerospace Engineering, University at Buffalo, The State University of New York, Buffalo, NY 14260, USA.
Department of Industrial and Systems Engineering, University at Buffalo, The State University of New York, Buffalo, NY 14260, USA.
Chem Commun (Camb). 2020 Feb 20;56(15):2332-2335. doi: 10.1039/c9cc08648j.
Lightweight and printable polymer dielectrics are ubiquitous in flexible hybrid electronics, exhibiting high breakdown strength and mechanical reliability. However, their advanced electronic applications are limited due to their relatively low permittivity, compared to their ceramic counterparts. Here, we report flexible all organic percolative nanocomposites that contain in situ grown conductive polymer networks and dielectric polymer matrix, in which their dielectric properties can be designed and guided from the percolation theory. High dielectric constant of all organic percolative nanocomposites is shown over a broad frequency range under intensive bending cycles, while their thermal stability is attributed to thermally conductive 2D montmorillonite nanosheets. The printable polymer composites with high dielectric performance and thermal stability will find broader interest in flexible hybrid electronics and radio frequency devices.
轻质且可印刷的聚合物电介质在柔性混合电子器件中无处不在,具有高击穿强度和机械可靠性。然而,与陶瓷电介质相比,由于其相对较低的介电常数,它们的先进电子应用受到限制。在此,我们报道了一种柔性全有机渗流纳米复合材料,其包含原位生长的导电聚合物网络和介电聚合物基体,其中它们的介电性能可根据渗流理论进行设计和调控。在强烈的弯曲循环下,全有机渗流纳米复合材料在很宽的频率范围内都表现出高介电常数,而它们的热稳定性归因于具有热传导性的二维蒙脱石纳米片。这种具有高介电性能和热稳定性的可印刷聚合物复合材料将在柔性混合电子器件和射频设备中引发更广泛的关注。