journal article Jan 01, 2025

Aluminum macrocycles induced superior high-temperature capacitive energy storage for polymer-based dielectrics via constructing charge trap rings

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Abstract
A new class of polymer dielectric composites exhibit remarkable high-temperature capacitive energy storage performance caused by a unique structure that reduces both electron concentration and mobility.
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Details
Published
Jan 01, 2025
Vol/Issue
18(9)
Pages
4405-4415
License
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Authors
Funding
National Natural Science Foundation of China Award: 52402152
China Postdoctoral Science Foundation Award: 2023M742631
Natural Science Foundation of Ningbo Municipality Award: 2023J377
Cite This Article
Zhongbin Pan, Yu Cheng, Zhicheng Li, et al. (2025). Aluminum macrocycles induced superior high-temperature capacitive energy storage for polymer-based dielectrics via constructing charge trap rings. Energy Environ. Sci., 18(9), 4405-4415. https://doi.org/10.1039/d4ee05689b
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