Zhu Lei
Department of Macromolecular Science and Engineering, Case Western Reserve University, Cleveland, Ohio 44106-7202, United States.
J Phys Chem Lett. 2014 Nov 6;5(21):3677-87. doi: 10.1021/jz501831q. Epub 2014 Oct 14.
Polymer dielectrics having high dielectric constant, high temperature capability, and low loss are attractive for a broad range of applications such as film capacitors, gate dielectrics, artificial muscles, and electrocaloric cooling. Unfortunately, it is generally observed that higher polarization or dielectric constant tends to cause significantly enhanced dielectric loss. It is therefore highly desired that the fundamental physics of all types of polarization and loss mechanisms be thoroughly understood for dielectric polymers. In this Perspective, we intend to explore advantages and disadvantages for different types of polarization. Among a number of approaches, dipolar polarization is promising for high dielectric constant and low loss polymer dielectrics, if the dipolar relaxation peak can be pushed to above the gigahertz range. In particular, dipolar glass, paraelectric, and relaxor ferroelectric polymers are discussed for the dipolar polarization approach.
具有高介电常数、高温耐受性和低损耗的聚合物电介质在诸如薄膜电容器、栅极电介质、人造肌肉和电热冷却等广泛应用中具有吸引力。不幸的是,人们普遍观察到,较高的极化或介电常数往往会导致介电损耗显著增加。因此,对于介电聚合物,深入理解所有类型极化和损耗机制的基本物理原理是非常必要的。在这篇展望文章中,我们打算探讨不同类型极化的优缺点。在众多方法中,如果偶极弛豫峰能够被推至吉赫兹范围以上,偶极极化对于高介电常数和低损耗聚合物电介质来说是很有前景的。特别地,针对偶极极化方法,讨论了偶极玻璃、顺电体和弛豫铁电聚合物。