| Literature DB >> 34728562 |
Chao Wu1, Ajinkya A Deshmukh2, Omer Yassin3, Jierui Zhou1,4, Abdullah Alamri2, John Vellek3, Stuti Shukla2, Michael Sotzing1, Riccardo Casalini5, Gregory A Sotzing6,3, Yang Cao7,4.
Abstract
Flexible large bandgap dielectric materials exhibiting ultra-fast charging-discharging rates are key components for electrification under extremely high electric fields. A polyoxafluoronorbornene (m-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 m-POFNB with enhanced dipolar relaxation and thus high dielectric constant without sacrificing the bandgap. m-POFNB thereby exhibits an unprecedentedly high discharged energy density of 7.44 J/cm3 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.Entities:
Keywords: dielectric; energy storage; high electric field; polarization; polymer
Year: 2021 PMID: 34728562 PMCID: PMC8609298 DOI: 10.1073/pnas.2115367118
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205