国内精品国产三级国产在线专_欧美日韩在线播放一区二区_成人xxxx视频_欧美激情视频一区_色女人综合av_久久久亚洲影院_久久久久久九九_成人免费网站在线_日韩美女毛茸茸_狠狠干一区二区

Links
Contact Info.
  • Address:長春市人民大街5625號
  • Zip:130022
  • Tel:0431-85262159
  • Fax:
  • Email:[email protected]
Current Location :> Home > Publications > Text
【Energy & Environmental Science】Rigid-Flexible Synergized Polymer Dielectrics with Multiple Crosslinking Networks for High-Temperature Electrostatic Energy Storage(IF=30.8,中科院一區)
writer:Baotieliang Wang, Jichun Zhao, Donghua Xu, Jiawei Zou*,Zhaoyan Sun*, Qi Li*, Shifang Luan*.
keywords:dielectric capacitors, rigid-flexible synergy
source:期刊
specific source:Energy & Environmental Science
Issue time:2025年

Abstract:

High-temperature dielectric energy storage materials are essential for next-generation power electronics and electrical systems operating in extreme environments. However, achieving high-energy storage in polymer dielectrics at ultrahigh temperatures (e.g., 200°C) remains a critical challenge, chiefly owing to the marked enhancement of molecular chain thermal motion, which gives rise to elevated charge conduction losses and diminished breakdown strength. Here, we propose a rigid-flexible synergistic multiple crosslinked network strategy that simultaneously suppresses inter/intra-chain charge transport while inhibiting thermal molecular motion. This rigid crosslinked architecture supports adjacent polymer chains, enhancing local segmental stability while also reducing interchain π-π stacking and dipole interactions. Further, enabled by the thermodynamic annealing of flexible segments, the homogenously distributed interchain rigid scaffolds strike a balance between local structural rigidity and global deformability, thereby efficiently mitigating bulk charge conduction and boosting energy storage capabilities under extreme conditions. The resulting material exhibits an exceptional energy storage performance at 200°C, with a discharge energy density of 6.91 J cm-3 at 90% efficiency. Moreover, it demonstrates outstanding cycling stability, maintaining performance over 50,000 charge-discharge cycles at 500 MV m-1. This study presents a new design strategy for high-temperature dielectric materials, showcasing the potential of multiple crosslinked structures to meet the demanding requirements of ultrahigh-temperature applications.