Please use this identifier to cite or link to this item: http://hdl.handle.net/10397/117276
DC FieldValueLanguage
dc.contributorDepartment of Applied Physics-
dc.creatorSu, Y-
dc.creatorJia, Y-
dc.creatorYang, X-
dc.creatorZhu, S-
dc.creatorFan, Y-
dc.creatorWang, W-
dc.creatorFan, H-
dc.date.accessioned2026-02-09T08:16:57Z-
dc.date.available2026-02-09T08:16:57Z-
dc.identifier.urihttp://hdl.handle.net/10397/117276-
dc.language.isoenen_US
dc.publisherWiley-VCHen_US
dc.subjectDielectric captativeen_US
dc.subjectEnergy storageen_US
dc.subjectFerroelectric-paraelectricen_US
dc.subjectHigh temperatureen_US
dc.subjectKNbO₃-SrTiO₃@Al₂O₃ filleren_US
dc.titleHigh-temperature fluorinated polyimide dielectric captative energy storage enabled by domain-engineered KNbO₃-SrTiO₃@Al₂O₃ nanofillersen_US
dc.typeJournal/Magazine Articleen_US
dc.identifier.volume9-
dc.identifier.issue12-
dc.identifier.doi10.1002/smtd.202501632-
dcterms.abstractPolymer dielectrics exhibit remarkable advantages, including high power density, elevated operating voltage, and excellent processability. In dielectric films, the ferroelectric domain architecture and its flipping dynamics are pivotal for energy storage, as they govern electric displacement and charge–discharge efficiency. A widely adopted strategy to enhance polarization involves incorporating ferroelectric ceramics into the polymer matrix. However, this approach inevitably induces higher dielectric loss and compromises charge–discharge efficiency. Here a ferroelectric-paraelectric KNbO₃-SrTiO₃ nanofillers is introduced that effectively suppress ferroelectric domain volume, mitigate hysteresis, and reduces remnant polarization. Phase-field simulations corroborate that domain polarization undergoes more facile reversal, substantially minimizing dielectric loss while preserving high polarization. To further enhance the breakdown strength (Eb), the KNbO₃-SrTiO₃ filler is encapsulated with an Al₂O₃ coating. Consequently, the KNbO₃-0.2 SrTiO₃@Al₂O₃/FPI nanocomposite film achieves outstanding dielectric capacitor performance, featuring an impressive energy storage density of 6.09 J cm⁻³, a higher displacement difference (Dₘₐₓ-Dᵣ) of 2.08 µC cm⁻³, and an Eb of 611 MV m⁻¹ at 150 °C under 100 Hz. This work presents a forward-thinking strategy for the scalable industrial production and deployment of high-performance dielectric capacitors.-
dcterms.accessRightsembargoed accessen_US
dcterms.bibliographicCitationSmall methods, 1 Dec. 2025, v. 9, no. 12, e01632-
dcterms.isPartOfSmall methods-
dcterms.issued2025-12-01-
dc.identifier.scopus2-s2.0-105021970234-
dc.identifier.pmid41243622-
dc.identifier.eissn2366-9608-
dc.identifier.artne01632-
dc.description.validate202602 bcjz-
dc.description.oaNot applicableen_US
dc.identifier.SubFormIDG000838/2026-01en_US
dc.description.fundingSourceOthersen_US
dc.description.fundingTextThis work was supported by the National Nature Science Foundation (52372125 and 52333009), the National Key Research and Development Project (2020YFC1521900 and 2020YFC1521904), the Shaanxi Provincial Science Foundation (2021GXLH-01-11), the Yulin Project (YLKG-2022-11), the 111 Program of MOE of China (B08040), and sponsored by Innovation Foundation for Doctor Dissertation of Northwestern Polytechnical University (No. CX2024063), the Fundamental Research Funds for the Central Universities (D5000230071), The authors also wish to acknowledge the Analytical & Testing Center of Northwestern Polytechnical University (2024T008) and the Shanghai Synchrotron Radiation Light Source for their support.en_US
dc.description.pubStatusPublisheden_US
dc.date.embargo2026-12-01en_US
dc.description.oaCategoryGreen (AAM)en_US
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