Semi-Alicyclic Dipolar Glass Dielectric Polymer Capacitors for Superior High-Temperature Capacitive Energy Storage.
basic_science · Level V
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- Record sourced from PubMed, PMID 40734493.
- Also identified by DOI 10.1002/adma.202505296.
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Abstract
Ultrahigh-power-density metallized film capacitors at elevated temperatures and electric field extremes are key components in electrical and electronic systems. The miniaturization, integration, and cost-effectiveness of the systems demand high-energy-density, high-efficiency, and reliable dielectrics. A major challenge is to concurrently break multiple paradoxes of bandgap (E<sub>g</sub>) with glass transition temperature (T<sub>g</sub>), dielectric constant (ɛ<sub>r</sub>) with E<sub>g,</sub> and self-healing capability with T<sub>g</sub>. In this contribution, a class of semi-alicyclic dipolar glass dielectric polymers (sAl-DG) is developed, with an alternating non-conjugated alicyclic unit and a strong dipolar group aromatic unit. The alicyclic unit synergistically confers a large E<sub>g</sub> and the potential for strong self-healing while the other unit concurrently endows high polarization and thermal stability, effectively decoupling the multiple paradoxes. As a result, sAl-DG delivers large E<sub>g</sub> with 3.99-4.26 eV, high T<sub>g</sub> with 218-387 °C, high ɛ<sub>r</sub> with 3.39-3.71 (200°C, 1 kHz) and simultaneously excellent self-healing ability with self-healing energy of 15.03 mJ. Hence, this molecular decoupling strategy enables a superior discharge energy density with 90% discharge efficiency (U<sub>η90</sub>) of up to 6.2 J cm<sup>-3</sup> at 200 °C, and state-of-the-art 3.94 J cm<sup>-3</sup> at 250 °C. Plus, a stacked sAl-DG capacitor demonstrates 1.06 J cm<sup>-</sup> <sup>3</sup> at 94% efficiency under 250 MV m<sup>-1</sup> and 200°C, showcasing operational viability.