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Bismuth trioxide-tailored sintering temperature, microstructure and NTCR characteristics of Mn1.1Co1.5Fe0.4O4 ceramics

机译:Mn1.1Co1.5Fe0.4O4陶瓷定制的三氧化二铋烧结温度,显微组织和NTCR特性

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Mn _(1.1) Co _(1.5) Fe _(0.4) O _(4) ceramics with tailored sintering temperature, microstructure, and NTCR characteristics were prepared using Bi _(2) O _(3) sintering additive by a solid-state reaction route. Densification and morphological characterization indicate that bismuth trioxide can play a critical role in the sintering process. The results reveal that the sintering temperature can be decreased significantly from 1200 °C to 1050 °C by using the appropriate content of Bi _(2) O _(3) additive. The resistivity decreases first and then increases with increasing Bi _(2) O _(3) content. The obtained B _(25/50) value and ρ _(25) ranges were 3647–3697 K, and 800–1075 Ω cm, respectively. Oxygen sorption theory can be used to illustrate the optimal thermal stability (Δ R / R _(0) = 0.10%). Complex impedance analysis further elucidates that grain boundaries make a dominant contribution to the total resistance. The mechanisms of grain boundary conduction and relaxation behavior are systematically analyzed. These findings open up a window for the further advancement of NTC ceramics at lower sintering temperature.
机译:Mn_(1.1)Co_(1.5)Fe_(0.4)O_(4)陶瓷具有特定的烧结温度,微观结构和NTCR特性,使用Bi _(2)O _(3)烧结添加剂通过固相制备。状态反应路线。致密化和形态表征表明,三氧化二铋在烧结过程中起着关键作用。结果表明,通过使用适当含量的Bi _(2)O _(3)添加剂可以将烧结温度从1200°C显着降低至1050°C。电阻率先随Bi _(2)O _(3)含量的增加而减小,然后增加。获得的B _(25/50)值和ρ_(25)范围分别为3647-3697 K和800-1075Ωcm。氧吸附理论可以用来说明最佳的热稳定性(ΔR / R _(0)= 0.10%)。复数阻抗分析进一步阐明了晶界对总电阻的主要影响。系统分析了晶界传导和弛豫行为的机理。这些发现为在更低的烧结温度下NTC陶瓷的进一步发展打开了一个窗口。

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