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通过掺杂钽在铌酸钠基弛豫铁电陶瓷中实现优异的储能性能

Excellent Energy Storage Properties Achieved in Sodium Niobate-Based Relaxor Ceramics through Doping Tantalum.

作者信息

Yang Letao, Kong Xi, Li Qi, Lin Yuan-Hua, Zhang Shujun, Nan Ce-Wen

机构信息

State Key Laboratory of New Ceramics and Fine Processing, School of Materials Science and Engineering, Tsinghua University, Beijing 100084, China.

State Key Laboratory of Power System, Department of Electrical Engineering, Tsinghua University, Beijing 100084, China.

出版信息

ACS Appl Mater Interfaces. 2022 Jul 20;14(28):32218-32226. doi: 10.1021/acsami.2c05205. Epub 2022 Jul 11.

Abstract

Lead-free relaxor ferroelectric ceramics are potential for energy storage applications due to their comprehensive energy storage properties. However, the energy efficiency of many relaxor ceramics is not high enough, leading to high Joule heat during the charge-discharge cycles, thus lowering their energy storage performance. In this work, tantalum (Ta) dopants were introduced into sodium niobate-based relaxor ceramics to improve the resistivity and energy efficiency. The leakage current was reduced by Ta doping, especially at the high electric field. The enhanced resistivity is attributed to the increased bandgap induced by Ta doping. The impedance spectroscopy shows that both the grain and grain boundary resistivities are improved in the high temperature region. As a result, the optimal recoverable energy density and energy efficiency are 6.5 J/cm and 94% at 450 kV/cm, respectively. In addition, the energy storage properties exhibit satisfactory temperature stability and cycling reliability. All these merits demonstrate that the Ta modified sodium niobate-based relaxor ceramic a potential candidate for high-power energy storage applications.

摘要

无铅弛豫铁电陶瓷因其综合储能性能而在储能应用方面具有潜力。然而,许多弛豫陶瓷的能量效率不够高,导致充放电循环过程中产生高热量,从而降低了它们的储能性能。在这项工作中,将钽(Ta)掺杂剂引入铌酸钠基弛豫陶瓷中以提高电阻率和能量效率。通过Ta掺杂降低了漏电流,尤其是在高电场下。电阻率的提高归因于Ta掺杂引起的带隙增加。阻抗谱表明,在高温区域,晶粒和晶界电阻率均得到改善。结果,在450 kV/cm下,最佳可恢复能量密度和能量效率分别为6.5 J/cm³和94%。此外,储能性能表现出令人满意的温度稳定性和循环可靠性。所有这些优点表明,Ta改性的铌酸钠基弛豫陶瓷是高功率储能应用的潜在候选材料。

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