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Influence of iron concentration and post-annealing temperature on structure and pseudocapacitive characteristics of a MnO2-Fe2O3 nanocomposite

机译:铁浓度和退火后温度对MnO2-Fe2O3纳米复合材料的结构和拟电容特性的影响

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Nanostructured MnO2 and MnO2-Fe2O3 nanocomposites (MF (x) O; x = 0.1, 0.2, and 0.3) have been synthesized through a low-temperature ball milling process followed by calcination and acid treatment. It was shown that both the post-annealing temperature and iron (Fe) concentration have a significant influence on the crystal structure and electrochemical performance of the MnO2 nanomaterial. The MnO2-RT is exclusively gamma-MnO2, while the MF (x) O is a mixture of alpha-MnO2 and Fe2O3. In 1 M lithium hydroxide (LiOH) electrolyte, the MF (x) O shows better performance as electrode material for supercapacitors than the MnO2 nanoparticles, indicating the beneficial effect of composite formation on the electrode performance. The specific capacitance of the MnO2 nanoparticles post-annealed at 200 A degrees C (MnO2-200 A degrees C electrode) reaches an optimal value of 133.8 F g(-1) at 0.75 A g(-1), while the MF0.1O post-annealed at 200 A degrees C (MF0.1O-200 A degrees C electrode) exhibits the highest value of 180.9 F g(-1) at 0.75 A g(-1). After 500 cycles, the specific capacitances of the MnO2-200 A degrees C and MF0.1O-200 A degrees C electrodes keep 84.3 and 84.7 % of the initial capacity, respectively. The facile synthesis, high specific capacitance, and good cycle stability of such MF (x) O electrodes enable their potential applications as electrode material in high-performance supercapacitors.
机译:纳米结构的MnO2和MnO2-Fe2O3纳米复合材料(MF(x)O; x = 0.1、0.2和0.3)是通过低温球磨工艺,随后的煅烧和酸处理工艺合成的。结果表明,退火后的温度和铁(Fe)浓度对MnO2纳米材料的晶体结构和电化学性能都有重要影响。 MnO2-RT仅是γ-MnO2,而MF(x)O是α-MnO2和Fe2O3的混合物。在1 M氢氧化锂(LiOH)电解质中,MF(x)O作为超级电容器的电极材料表现出比MnO2纳米粒子更好的性能,表明复合物形成对电极性能的有益影响。在0.75 A g(-1)下于200 A摄氏度(MnO2-200 A摄氏度电极)进行后退火的MnO2纳米粒子的比电容达到133.8 F g(-1)的最佳值,而MF0.1O在200 A摄氏度(MF0.1O-200 A摄氏度电极)中进行后退火处理,在0.75 A g(-1)时显示出180.9 F g(-1)的最大值。在500次循环后,MnO2-200 A摄氏度和MF0.1O-200 A摄氏度电极的比电容分别保持初始容量的84.3%和84.7%。此类MF(x)O电极的简便合成,高比电容和良好的循环稳定性使它们有可能在高性能超级电容器中用作电极材料。

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