首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Optimizing the defect chemistry of Na1/2Bi1/2TiO3-based materials: paving the way for excellent high temperature capacitors
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Optimizing the defect chemistry of Na1/2Bi1/2TiO3-based materials: paving the way for excellent high temperature capacitors

机译:优化Na1 / 2Bi1 / 2tio3基材料的缺陷化学产品:为优异的高温电容器铺平道路

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摘要

For applications in automotive, aviation and renewable energy industries temperature and power requirements have been significantly increased for electronic components. In particular, capacitors have been identified as the most critical materials considering the fulfillment of these requirements. Ceramics are the most promising materials for high temperature capacitors but no ceramic has been able to meet the necessary electrical properties so far. In this work, Na _(1/2) Bi _(1/2) TiO _(3) (NBT) solid solutions are investigated to optimize the respective electrical properties. A reduction of bismuth vacancy and oxygen vacancy concentration by increasing the initial Bi content leads to a significant decrease in dielectric loss. Additionally, energy efficiencies of up to 97% can be achieved for the composition Na _(1/2) Bi _(1/2) O _(3) –BaTiO _(3) –CaZrO _(3) (NBT–BT–CZ) and the temperature range of stable high permittivity together with low dielectric loss (tan? δ ≤ 0.02) extends from ?67 °C to 362 °C. Hence, optimization of the defect chemistry of NBT-materials results in highly stable electrical properties over a large temperature and electric field range, which leads to the fulfillment of industrial requirements.
机译:对于汽车,航空和可再生能源行业的应用,对于电子元件,温度和功率要求得到了显着提高。特别地,考虑到满足这些要求,已经被识别为最关键的材料。陶瓷是高温电容器最有前途的材料,但迄今为止没有陶瓷已经能够满足必要的电气性能。在这项工作中,研究了Na _(1/2)Bi _(1/2)TiO _(3)(NBT)固溶体以优化各自的电性能。通过增加初始BI含量的抗铋空位和氧空位浓度的降低导致介电损耗的显着降低。另外,对于组合物Na _(1/2)Bi _(1/2)o _(3)-batio _(3)-Cazro _(3)(NBT-BT),可以实现高达97%的能量效率。(3)(NBT-BT -CZ)和稳定的高介电常数的温度范围与低介电损耗(TAN?Δ≤0.02)一起延伸到67℃至362℃。因此,优化NBT材料的缺陷化学在大型温度和电场范围内产生高度稳定的电气性能,这导致了工业需求的实现。

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