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通过高熵策略提高铋钠钛基无铅陶瓷的高介电击穿强度以实现优异的储能性能

Boosting High Electric Breakdown Strength for Excellent Energy Storage Performance in BiNaTiO-Based Lead-Free Ceramics via a High Entropy Strategy.

作者信息

Mao Pu, Guo Yongguang, Wang Ting, He Liqiang, Li Wanjin, Liu Zhiyong, Xie Bing, Guo Kun, Shu Longlong, Gao Jinghui

机构信息

Jiangxi Key Laboratory of Extreme Manufacturing Technology for High-end Equipment, School of Materials Science and Engineering, Nanchang Hangkong University, Nanchang 330063, China.

State Key Laboratory of Electrical Insulation and Power Equipment, Xi'an Jiaotong University, Xi'an, Shannxi 710049, China.

出版信息

ACS Appl Mater Interfaces. 2025 Jan 8;17(1):1485-1498. doi: 10.1021/acsami.4c15339. Epub 2024 Dec 17.

Abstract

High-performance dielectric capacitors featuring large recoverable energy storage density () and high discharge efficiency (η) are beneficial to realize the device miniaturization, lightweight property, and sustainability of advanced pulse power systems. The obtainment of a high electric breakdown strength () is crucial for improving the energy storage performance of dielectric materials. However, as for BiNaTiO (BNT) lead-free relaxor ferroelectric ceramics, the relatively lower directly limits their electrical performance improvement and practical applications. Herein, a popular high entropy strategy was employed to rationally design and prepare the (BiNa)(SrBaLaK)TiO (BNSLBKT-) lead-free relaxor ferroelectric ceramics based on the BNT matrix. Encouragingly, the BNSLBKT-0.2 high-entropy ceramic exhibits a high of 510 kV/cm, and this can be ascribed to the refined grains and enhanced activation energy. Moreover, it is confirmed that the polar nanoregions (PNRs) exist in the BNSLBKT-0.2 ceramic by the piezoresponse force microscopy (PFM) and transmission electron microscopy (TEM) characteristics, further strengthening relaxation behaviors and decreasing remanent polarization (). It is anticipated that a high of 4.6 J/cm and a good η of 86% are obtained in this BNSLBKT-0.2 high-entropy ceramic. More importantly, the BNSLBKT-0.2 ceramic displays excellent frequency stability of capacitive energy storage at 10-1000 Hz and good temperature stability at 20-140 °C. The fast discharge rate (τ = 0.26 μs) and the high of 49.2 MW/cm are also achieved in this BNSLBKT-0.2 ceramic. The findings demonstrate that this high entropy design is an effective strategy for developing dielectrics with excellent energy storage capability to meet the requirements of modern dielectric capacitor applications.

摘要

具有大的可恢复储能密度()和高放电效率(η)的高性能介电电容器有利于实现先进脉冲电源系统的设备小型化、轻量化和可持续性。获得高的电场击穿强度()对于提高介电材料的储能性能至关重要。然而,对于铋钠钛(BNT)无铅弛豫铁电陶瓷而言,相对较低的直接限制了其电学性能的提升和实际应用。在此,采用一种流行的高熵策略,基于BNT基体合理设计并制备了(BiNa)(SrBaLaK)TiO(BNSLBKT-)无铅弛豫铁电陶瓷。令人鼓舞的是,BNSLBKT-0.2高熵陶瓷表现出510 kV/cm的高电场击穿强度,这可归因于细化的晶粒和增强的活化能。此外,通过压电响应力显微镜(PFM)和透射电子显微镜(TEM)特性证实了BNSLBKT-0.2陶瓷中存在极性纳米区域(PNR),进一步强化了弛豫行为并降低了剩余极化()。预计在这种BNSLBKT-0.2高熵陶瓷中可获得4.6 J/cm的高储能密度和86%的良好放电效率。更重要的是,BNSLBKT-0.2陶瓷在10 - 1000 Hz下表现出优异的电容储能频率稳定性,在20 - 140°C下表现出良好的温度稳定性。在这种BNSLBKT-0.2陶瓷中还实现了快速放电速率(τ = 0.26 μs)和49.2 MW/cm的高功率密度。这些发现表明,这种高熵设计是开发具有优异储能能力的电介质以满足现代介电电容器应用需求的有效策略。

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