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储能系统技术 SiC器件 ★ 5.0

用于固态电解质电池应用的LISICON化合物Li3Al2(PO4)3的结构合成与复阻抗分析

Synthesis and investigation on the structural and complex impedance analysis in LISICON compound, Li3Al2(PO4)3, for solid electrolyte battery applications

作者 Fahad N. Almutairi
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
技术标签 SiC器件
相关度评分 ★★★★★ 5.0 / 5.0
关键词 LiSICON Li3Al2(PO4)3 离子电导率 固态电解质 复阻抗谱
语言:

中文摘要

LiSICON材料因其在高温下优异的离子电导率而受到广泛关注,被视为储能及其他新兴应用领域中极具前景的候选材料。本研究针对具有显著潜力的固态电解质材料Li3Al2(PO4)3进行了系统研究。X射线衍射(XRD)技术确认了其晶相结构,扫描电子显微镜(SEM)和能谱分析(EDX)则提供了材料形貌与成分信息,验证了其化学计量比的准确性。采用复阻抗谱(CIS)技术对材料的电学与介电性能进行了表征,结果表明其对频率和温度具有高度敏感性。在不同条件下的详细阻抗测量揭示了材料的电响应行为,Nyquist图显示晶粒和晶界均对总电导有贡献,表现出典型的非德拜型弛豫特征。对交流电导率数据应用Jonsher幂律模型分析表明,载流子传导机制符合相关势垒跳跃(CBH)模型,该过程由Li+离子的跳跃主导。值得注意的是,Li3Al2(PO4)3表现出极高的介电常数(ε ~ 10^4),表明其具备优良的介电性能和显著的能量存储能力。上述结果充分证明了Li3Al2(PO4)3作为高性能固态电解质在高温应用,特别是储能器件中的巨大潜力。

English Abstract

LiSICON materials have gained significant attention due to their exceptional ionic conductivity at elevated temperatures, positioning them as promising candidates for energy storage and other emerging applications. This study investigates Li 3 Al 2 (PO 4 ) 3 , a compound with notable potential as a solid electrolyte. X-ray diffraction (XRD) confirmed the crystalline phase, while scanning electron microscopy (SEM) and energy-dispersive X-ray spectroscopy (EDX) provided insights into its morphology and composition, ensuring accurate stoichiometry. The electrical and dielectric properties were investigated using complex impedance spectroscopy (CIS), revealing a high sensitivity to frequency and temperature. Detailed impedance measurements across various conditions elucidated the material’s behavior, with Nyquist plots indicating contributions from both grains and grain boundaries, characteristic of non-Debye-type relaxation. Jonscher’s power law was applied to the AC conductivity data, demonstrating that the conduction mechanism aligns with the correlated barrier hopping (CBH) model, driven by the hopping of Li + ions. Notably, Li 3 Al 2 (PO 4 ) 3 exhibited a high permittivity value (ε ~ 10 4 ), indicating excellent dielectric properties and significant energy storage capacity. These findings underscore the potential of Li 3 Al 2 (PO 4 ) 3 as a high-performance solid electrolyte for high-temperature applications, particularly in energy storage devices.
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SunView 深度解读

该LISICON固态电解质研究对阳光电源储能系统具有战略价值。Li3Al2(PO4)3材料展现的高温离子导电性和高介电常数(ε~10⁴)特性,可为ST系列PCS和PowerTitan储能方案提供下一代固态电池技术路径。其非德拜弛豫特性与关联势垒跳跃导电机制,为优化电池管理系统的阻抗建模和热管理策略提供理论依据。高温稳定性特别适配工商业储能场景,可提升系统安全性并延长循环寿命,支撑阳光电源在固态储能技术的前瞻布局。