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The effect of B4C addition to MnO2 in a cathode material for battery applications

机译:B4C在电池材料正极材料中向MnO2中添加的影响

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摘要

Boron carbide (B4C) added manganese dioxide (MnO2) used as a cathode material for a Zn–MnO2 battery using aqueous lithium hydroxide (LiOH) as the electrolyte is known to have higher discharge capacity but with a lower average discharge voltage than pure MnO2 (additive free). The performance is reversed when using potassium hydroxide (KOH) as the electrolyte. Herein, the MnO2 was mixed with 0, 5, 7 and 10 wt.% of boron carbide during the electrode preparation. The discharge performance of the Zn|LiOH|MnO2 battery was improved by the addition of 5–7 wt.% boron carbide in MnO2 cathode as compared with the pure MnO2. However, increasing the additive to 10 wt.% causes a decrease in the discharge capacity. The performance of the Zn|KOH|MnO2 battery was retarded by the boron carbide additive. Transmission electron microscopy (TEM), and energy dispersive X-ray spectroscopy analysis (EDS) results show evidence of crystalline MnO2 particles during discharging in LiOH electrolyte, whereas, manganese oxide particles with different oxygen and manganese counts leading to mixture of phases is observed for KOH electrolyte which is in agreement with X-ray diffraction (XRD) data. The enhanced discharge capacity indicates that boron atoms promote lithium intercalation during the electrochemical process and improved the performance of the Zn|LiOH|MnO2 battery. This observed improvement may be a consequence of B4C suppressing the formation of undesirable Mn(III) phases, which in turn leads to enhanced lithium intercalation. Too much boron carbide hinders the charge carrier which inhibits the discharge capacity.
机译:众所周知,碳化硼(B4C)添加的二氧化锰(MnO2)用作使用氢氧化锂(LiOH)作为电解质的Zn-MnO2电池的正极材料,与纯MnO2相比,具有更高的放电容量,但平均放电电压更低(不含添加剂)。当使用氢氧化钾(KOH)作为电解质时,性能会相反。在此,在电极制备期间,将MnO 2与0、5、7和10重量%的碳化硼混合。与纯MnO2相比,在MnO2阴极中添加5-7 wt%的碳化硼可以改善Zn | LiOH | MnO2电池的放电性能。然而,将添加剂增加至10重量%会导致放电容量降低。 Zn | KOH | MnO2电池的性能受碳化硼添加剂的影响。透射电子显微镜(TEM)和能量色散X射线光谱分析(EDS)结果表明,在LiOH电解液中放电过程中出现了结晶MnO2颗粒的证据,而观察到具有不同氧和锰计数的锰氧化物颗粒会导致相混合。与X射线衍射(XRD)数据一致的KOH电解质。增强的放电容量表明硼原子在电化学过程中促进了锂的嵌入并改善了Zn | LiOH | MnO2电池的性能。观察到的这种改善可能是B4C抑制了不希望的Mn(III)相形成的结果,这反过来又导致了锂嵌入的增强。碳化硼过多会阻碍电荷载流子,从而抑制放电容量。

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