Wu Chao, Deshmukh Ajinkya A, Yassin Omer, Zhou Jierui, Alamri Abdullah, Vellek John, Shukla Stuti, Sotzing Michael, Casalini Riccardo, Sotzing Gregory A, Cao Yang
Electrical Insulation Research Center, Institute of Materials Science, University of Connecticut, Storrs, CT 06269.
Polymer Program, University of Connecticut, Storrs, CT 06269.
Proc Natl Acad Sci U S A. 2021 Nov 9;118(45). doi: 10.1073/pnas.2115367118.
Flexible large bandgap dielectric materials exhibiting ultra-fast charging-discharging rates are key components for electrification under extremely high electric fields. A polyoxafluoronorbornene (-POFNB) with fused five-membered rings separated by alkenes and flexible single bonds as the backbone, rather than conjugated aromatic structure typically for conventional high-temperature polymers, is designed to achieve simultaneously high thermal stability and large bandgap. In addition, an asymmetrically fluorinated aromatic pendant group extended from the fused bicyclic structure of the backbone imparts -POFNB with enhanced dipolar relaxation and thus high dielectric constant without sacrificing the bandgap. -POFNB thereby exhibits an unprecedentedly high discharged energy density of 7.44 J/cm and high efficiency at 150 °C. This work points to a strategy to break the paradox of mutually exclusive constraints between bandgap, dielectric constant, and thermal stability in the design of all-organic polymer dielectrics for harsh condition electrifications.
具有超快充放电速率的柔性大带隙介电材料是在极高电场下实现电气化的关键部件。设计了一种聚氧氟降冰片烯(-POFNB),其具有由烯烃和柔性单键隔开的稠合五元环作为主链,而不是传统高温聚合物典型的共轭芳香结构,以同时实现高热稳定性和大带隙。此外,从主链的稠合双环结构延伸出的不对称氟化芳香侧基赋予-POFNB增强的偶极弛豫,从而在不牺牲带隙的情况下具有高介电常数。-POFNB因此在150°C时表现出前所未有的7.44 J/cm³的高放电能量密度和高效率。这项工作指出了一种策略,以打破在恶劣条件下电气化的全有机聚合物电介质设计中带隙、介电常数和热稳定性之间相互排斥约束的悖论。