采用水热法成功合成了一种新型氮掺杂碳修饰MnO2纳米带(MnO2@NC)。将该材料作为锂离子电池负极时,在2 A g-1的大电流密度下循环1000次后,其可逆比容量可达310.4 mAh g-1,并展现出卓越的倍率并能。与未改性MnO2相比,MnO2@NC表现出更好的...采用水热法成功合成了一种新型氮掺杂碳修饰MnO2纳米带(MnO2@NC)。将该材料作为锂离子电池负极时,在2 A g-1的大电流密度下循环1000次后,其可逆比容量可达310.4 mAh g-1,并展现出卓越的倍率并能。与未改性MnO2相比,MnO2@NC表现出更好的倍率性能、更高的比容量和容量保持率。电化学测试分析表明,MnO2@NC电化学性能提高的原因在于电荷转移电阻的降低、缩短的Li+扩散距离以及更为优异的电极动力学。?展开更多
Nanopowder MnO 2 was prepared with two oxidation reduction methods.XRD,SEM,FT IR and surface area measurement techniques were used to investigate properties of the MnO 2 powder.The results showed that the nano MnO 2 w...Nanopowder MnO 2 was prepared with two oxidation reduction methods.XRD,SEM,FT IR and surface area measurement techniques were used to investigate properties of the MnO 2 powder.The results showed that the nano MnO 2 with an average diameter in 30~50nm and good dispersity and high catalytic activity for H 2O 2 decomposition,can be synthesized with the two methods.With reduced crystal size of the powder,the infrared absorption peak of Mn O bond was blue shifted and fissioned,one shifted 61 19cm -1 and the other shifted 11 15cm -1 ,and the characteristic vibration bands of adsorption water were also blue shifted.展开更多
文摘采用水热法成功合成了一种新型氮掺杂碳修饰MnO2纳米带(MnO2@NC)。将该材料作为锂离子电池负极时,在2 A g-1的大电流密度下循环1000次后,其可逆比容量可达310.4 mAh g-1,并展现出卓越的倍率并能。与未改性MnO2相比,MnO2@NC表现出更好的倍率性能、更高的比容量和容量保持率。电化学测试分析表明,MnO2@NC电化学性能提高的原因在于电荷转移电阻的降低、缩短的Li+扩散距离以及更为优异的电极动力学。?
文摘Nanopowder MnO 2 was prepared with two oxidation reduction methods.XRD,SEM,FT IR and surface area measurement techniques were used to investigate properties of the MnO 2 powder.The results showed that the nano MnO 2 with an average diameter in 30~50nm and good dispersity and high catalytic activity for H 2O 2 decomposition,can be synthesized with the two methods.With reduced crystal size of the powder,the infrared absorption peak of Mn O bond was blue shifted and fissioned,one shifted 61 19cm -1 and the other shifted 11 15cm -1 ,and the characteristic vibration bands of adsorption water were also blue shifted.