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Multiphase Coexistence and High Energy Storage Performance in BKT-Based Lead-Free Relaxor Ferroelectric Ceramics AITranslate

Hangzhou Dianzi University; Hangzhou Dianzi University; Hangzhou Dianzi University; Hangzhou Dianzi University; Hangzhou Dianzi University; Hangzhou Dianzi University; Hangzhou Dianzi University; Hangzhou Dianzi University; Hangzhou Dianzi University; Hangzhou Dianzi University
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Publisher: Elsevier
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Abstract AITranslate

Dielectric ceramic capacitors play a crucial role in energy electricity and electronic circuit systems owing to their exceptional ability to rapidly store and release electrical charge and remarkable power density. However, they still face critical challenges related to improving recoverable energy storage density (Wrec) and efficiency (η) synergistically. To address these issues, a novel relaxor ceramic system is designed in this work by introducing linear dielectric SrTiO3 (ST) into ferroelectric Bi0.5K0.5TiO3-BiFeO3 (BKT-BF) with large polarization. XRD refinement and TEM characterization demonstrate the coexistence of Rhombohedral (R3mr), Tetragonal (P4mm) and Cubic (Pm-3m) phases, which induces polar nano-regions (PNRs) in the ceramic and gives rise a decreased remanent polarization (Pr) and an enhanced η. SEM and ultraviolet–visible spectrum confirm a decreased grain size and a widened bandgap, leading to an ultra-high breakdown electric field. Therefore, a superior recoverable Wrec of 7.32 J/cm3 and an impressive η of 88.06% are achieved, accompanied by prominent stability across a wide temperature range (30-150 ℃), various frequencies (1-500 Hz), and a substantial number of cycles (1-105 cycles) in the BKT-BF-0.4ST sample. These findings strongly suggest that the BKT-BF-xST ceramic system holds exceptional promise for applications in pulse power capacitor applications. Graphical abstract Download : Download high-res image (244KB) Download : Download full-size image

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DOI:https://doi.org/10.1016/j.apmt.2024.102097

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Citation Information:

Dielectric ceramic capacitors play a crucial role in energy electricity and electronic circuit systems owing to their exceptional ability to rapidly store and release electrical charge and remarkable power density. However, they still face critical challenges related to improving recoverable energy storage density (Wrec) and efficiency (η) synergistically. To address these issues, a novel relaxor ceramic system is designed in this work by introducing linear dielectric SrTiO3 (ST) into ferroelectric Bi0.5K0.5TiO3-BiFeO3 (BKT-BF) with large polarization. XRD refinement and TEM characterization demonstrate the coexistence of Rhombohedral (R3mr), Tetragonal (P4mm) and Cubic (Pm-3m) phases, which induces polar nano-regions (PNRs) in the ceramic and gives rise a decreased remanent polarization (Pr) and an enhanced η. SEM and ultraviolet–visible spectrum confirm a decreased grain size and a widened bandgap, leading to an ultra-high breakdown electric field. Therefore, a superior recoverable Wrec of 7.32 J/cm3 and an impressive η of 88.06% are achieved, accompanied by prominent stability across a wide temperature range (30-150 ℃), various frequencies (1-500 Hz), and a substantial number of cycles (1-105 cycles) in the BKT-BF-0.4ST sample. These findings strongly suggest that the BKT-BF-xST ceramic system holds exceptional promise for applications in pulse power capacitor applications. Graphical abstract Download : Download high-res image (244KB) Download : Download full-size image

quote

GB/T 7714-2015 [1] Yiming Zhang, Ziang Niu, Peng Zheng, et al. Applied Materials Today, 2024(37). DOI:10.1016/j.apmt.2024.102097.
MLA [1] Yiming Zhang, et al., Applied Materials Today, no. 37, 2024, https://doi.org/10.1016/j.apmt.2024.102097.
APA [1] Yiming Zhang, Ziang Niu, Peng Zheng, Xiangting Zheng, Jianying Zhou, Jianbo Liu, Qiaolan Fan, Liang Zheng, Wangfeng Bai, & Yang Zhang. (2024). Applied Materials Today(37). https://doi.org/10.1016/j.apmt.2024.102097
IEEE [1] Yiming Zhang, Ziang Niu, Peng Zheng, Xiangting Zheng, Jianying Zhou, Jianbo Liu, Qiaolan Fan, Liang Zheng, Wangfeng Bai, and Yang Zhang, Applied Materials Today, no. 37, 2024, doi: 10.1016/j.apmt.2024.102097.