TY - JOUR
T1 - High power Na-ion rechargeable battery with single-crystalline Na 0.44MnO 2 nanowire electrode
AU - Hosono, Eiji
AU - Saito, Tatsuya
AU - Hoshino, Junichi
AU - Okubo, Masashi
AU - Saito, Yoshiyasu
AU - Nishio-Hamane, Daisuke
AU - Kudo, Tetsuichi
AU - Zhou, Haoshen
PY - 2012/11/1
Y1 - 2012/11/1
N2 - High power Na-ion rechargeable batteries have attracted much interest recently. In particular, the development of nanostructured electrode materials is essentially required, because the large surface area and short Na-ion diffusion length could provide the high power density. In this paper, we report on the fabrication of single-crystalline Na 0.44MnO 2 nanowire, and the application to Na-ion rechargeable batteries. The single phase Na 0.44MnO 2 was successfully synthesized by the hydrothermal method. The SEM and TEM experiments proved that hydrothermally synthesized Na 0.44MnO 2 has single-crystalline nanowire morphology. The single-crystalline Na 0.44MnO 2 nanowire electrode in Na-ion batteries showed both the excellent cycle stability and high-charge/discharge-rate capability. Highlights: The single crystalline Na 0.44MnO 2 nanowires for the sodium ion battery. The excellent cycle stability and high-charge/discharge-rate capability. A potential candidate for the cathode material in the high power Na-ion battery.
AB - High power Na-ion rechargeable batteries have attracted much interest recently. In particular, the development of nanostructured electrode materials is essentially required, because the large surface area and short Na-ion diffusion length could provide the high power density. In this paper, we report on the fabrication of single-crystalline Na 0.44MnO 2 nanowire, and the application to Na-ion rechargeable batteries. The single phase Na 0.44MnO 2 was successfully synthesized by the hydrothermal method. The SEM and TEM experiments proved that hydrothermally synthesized Na 0.44MnO 2 has single-crystalline nanowire morphology. The single-crystalline Na 0.44MnO 2 nanowire electrode in Na-ion batteries showed both the excellent cycle stability and high-charge/discharge-rate capability. Highlights: The single crystalline Na 0.44MnO 2 nanowires for the sodium ion battery. The excellent cycle stability and high-charge/discharge-rate capability. A potential candidate for the cathode material in the high power Na-ion battery.
KW - Na MnO
KW - Nanowire
KW - Single crystal
KW - Sodium ion battery
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U2 - 10.1016/j.jpowsour.2012.05.100
DO - 10.1016/j.jpowsour.2012.05.100
M3 - Article
AN - SCOPUS:84862661782
SN - 0378-7753
VL - 217
SP - 43
EP - 46
JO - Journal of Power Sources
JF - Journal of Power Sources
ER -