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储能系统技术 ★ 5.0

La掺杂BiFeO3薄膜在高度有序热解石墨单晶衬底上的多铁性及其在储能应用中的研究

Multiferroic properties of La-doped BiFeO3 thin films on highly ordered pyrolytic graphite single-crystal substrates using PLD for energy storage applications

作者 Jong Yeog Son
期刊 Journal of Materials Science: Materials in Electronics
出版日期 2025年1月
卷/期 第 36.0 卷
技术分类 储能系统技术
相关度评分 ★★★★★ 5.0 / 5.0
关键词 La掺杂 Bi1.2FeO3 多铁性能 储能性能 脉冲激光沉积
语言:

中文摘要

采用脉冲激光沉积法(PLD)在高度有序热解石墨(HOPG)衬底上制备了La掺杂的Bi1.2FeO3(BFO)薄膜,并系统研究了镧(La)掺杂对薄膜漏电流、铁电性、磁性及疲劳特性的影响。本研究重点探讨了不同La掺杂浓度对材料储能性能和多铁性的影响。结果表明,优选(111)取向的多晶BFO薄膜,尤其是掺杂10 mol.% La的样品,表现出优异的结晶质量和突出的铁电性能。随着La掺杂浓度的增加,BFO薄膜的漏电流特性得到改善,同时磁性也有所增强。未掺杂La时,BFO薄膜的剩余极化约为23.9 μC/cm²;当La掺杂浓度增至5 mol.%和10 mol.%时,剩余极化显著提高至约32.6 μC/cm²和48.4 μC/cm²。值得注意的是,掺杂约15 mol.% La的BFO薄膜实现了约70.6 J/cm³的最大储能密度,储能效率约为68.2%,损耗能量密度约为32.9 J/cm³。该性能提升主要归因于La掺杂所引起的铁电性能改善和漏电流降低。因此,在HOPG衬底上沉积多晶BFO薄膜并通过La掺杂优化其储能特性,为储能技术的发展提供了有前景的研究方向。

English Abstract

La-doped Bi 1.2 FeO 3 (BFO) thin films deposited on highly ordered pyrolytic graphite (HOPG) substrates were synthesized using pulsed laser deposition method (PLD). The impact of the lanthanum (La) doping on the leakage current, ferroelectric, magnetic, and fatigue properties of the thin films was investigated. This study explores the energy storage and multiferroic properties, focusing on the influence of incorporated La concentrations. Preferentially, (111)-oriented polycrystalline BFO thin films, particularly doped with 10 mol.% La, demonstrated superior crystallinity and exceptional ferroelectric properties. As La concentration increased, BFO thin films exhibited improved leakage current characteristics and enhanced magnetic properties. The remanent polarization of BFO thin film was approximately 23.9 μC/cm 2 without La doping. However, as La doping concentration increased to 5 and 10 mol.%, it significantly improved to approximately 32.6 and 48.4 μC/cm 2 ; respectively. Notably, BFO thin films doped with approximately 15 mol.% La achieved a maximum energy density of around 70.6 J/cm 3 , coupled with an energy storage efficiency of approximately 68.2% and a loss energy density of about 32.9 J/cm 3 . This performance enhancement is attributed to the improved ferroelectric properties and reduced leakage current enabled by La doping. Thus, the deposition of polycrystalline BFO thin films on HOPG substrates and the optimization of their energy storage properties through La doping provide promising advancements for energy storage technologies.
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SunView 深度解读

该La掺杂BiFeO3薄膜技术展现出优异的储能性能,最高能量密度达70.6 J/cm³、效率68.2%,对阳光电源ST系列储能变流器和PowerTitan系统具有重要参考价值。多铁性材料的低漏电流和高极化特性可启发新型电容储能单元设计,potentially提升ESS系统的功率密度和循环寿命。该薄膜材料的快速充放电特性与我司GFM控制技术结合,可优化储能系统的动态响应性能,为下一代高功率密度储能解决方案提供材料创新方向。