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High-performance colossal permittivity materials of (Nb + Er) co-doped TiO2 for large capacitors and high-energy-density storage devices

机译:用于大电容器和高能密度存储装置的(NB + ER)共掺杂TiO2的高性能巨大漏洞材料

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摘要

The search for colossal permittivity (CP) materials is imperative because of their potential for promising applications in the areas of device miniaturization and energy storage. High-performance CP materials require high dielectric permittivity, low dielectric loss and relatively weak dependence of frequency- and temperature. In this work, we first investigate the CP behavior of rutile TiO2 ceramics co-doped with niobium and erbium, i.e., (Er0.5Nb0.5)xTi1-xO2. Excellent dielectric properties were observed in the materials, including a CP of up to 104-105 and a low dielectric loss (tanδ) down to 0.03, which are lower than that of the previously reported co-doped TiO2 CP materials when measured at 1 kHz. Stabilities of frequency and temperature were also accomplished via doping Er and Nb. Valence states of the elements in the material were analyzed using X-ray photoelectron spectroscopy. The Er induced secondary phases were observed using elemental mapping and energy-dispersive spectrometry. Consequently, this work may provide comprehensive guidance to develop high-performance CP materials for fully solid-state capacitor and energy storage applications.
机译:搜索巨大介电常数(CP)材料是必要的,因为它们在设备小型化和能量存储领域的承诺应用的可能性。高性能CP材料需要高介电介电常数,低介电损耗和相对较弱的频率和温度依赖性。在这项工作中,我们首先探讨了金红石TiO2陶瓷的CP行为,掺杂有铌和铒,即(ER0.5NB0.5)XTI1-XO2。在材料中观察到优异的介电性质,包括高达104-105的Cp和低至0.03的低介电损耗(Tanδ),其在1 kHz下测量时低于先前报道的共掺杂TiO2 CP材料的介电损耗(Tanδ) 。通过掺杂ER和Nb也完成频率和温度的稳定性。使用X射线光电子谱分析材料中的元素的价值。使用元素映射和能量分散光谱法观察ER诱导的二次相。因此,这项工作可以为开发全固态电容和能量存储应用的高性能CP材料提供全面的指导。

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