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3D Interconnected MoO_2 Nanocrystals on Nickel Foam as Binder-free Anode for Li-ion Batteries

3D Interconnected MoO_2 Nanocrystals on Nickel Foam as Binder-free Anode for Li-ion Batteries
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摘要 MoOnanocrystals(NCs) on Ni foam were simply synthesized via a facile hydrothermal method and a dip-coating method. It was worth noting that ultrafine interconnected MoOnanocrystals(about 10 nm) were uniformly anchored on Ni foam to fabricate a particular three-dimensional architecture, which may provide more active sites and shorter transmission pathways for lithium ions. As binder-free anode, MoONCs on Ni foam deliver a high initial discharge capacity of 990 mAh·gand retain a reversible capacity of 924 mAh· g(-1) after 100 cycles at a current density of 0.1 C. More importantly, when the current density returns from 2 C to 0.1 C, the capacity recovers to 910 mAh·g(-1)(about 92% of the original high capacity), suggesting excellent cycling stability and rate capability. The particular 3 D electrode as binder-free anode makes it a promising anode candidate for high-performance lithium-ion batteries. MoO_2 nanocrystals(NCs) on Ni foam were simply synthesized via a facile hydrothermal method and a dip-coating method. It was worth noting that ultrafine interconnected MoO_2 nanocrystals(about 10 nm) were uniformly anchored on Ni foam to fabricate a particular three-dimensional architecture, which may provide more active sites and shorter transmission pathways for lithium ions. As binder-free anode, MoO_2 NCs on Ni foam deliver a high initial discharge capacity of 990 mAh·g^(-1) and retain a reversible capacity of 924 mAh· g(-1) after 100 cycles at a current density of 0.1 C. More importantly, when the current density returns from 2 C to 0.1 C, the capacity recovers to 910 mAh·g(-1)(about 92% of the original high capacity), suggesting excellent cycling stability and rate capability. The particular 3 D electrode as binder-free anode makes it a promising anode candidate for high-performance lithium-ion batteries.
出处 《Journal of Wuhan University of Technology(Materials Science)》 SCIE EI CAS 2018年第6期1315-1322,共8页 武汉理工大学学报(材料科学英文版)
基金 Funded by the National Natural Science Foundation of China(51506155)
关键词 MoO2 nanocrystals 3D architecture binder-free anode lithium-ion batteries MoO2 nanocrystals 3D architecture binder-free anode lithium-ion batteries
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  • 1Shi JY, Yi CW, Kim K. Improved Electrochemical Performance of A1PO4-coated LiMnLsNi0.504 Electrode for Lithium-Ion Batteries [J]. Journal of Power Sources, 2010, 195:6 860-6 866.
  • 2Wang XY, Zhou XF, Yao K, et al. A SnOJGraphene Composite as a High Stability Electrode for Lithium Ion Batteries[J]. Carbon, 2011, 49:133-139.
  • 3Chan CK, Peng HL, Liu G, et al. High-Performance Lithium Battery Anodes Using Silicon Nanowires[J]. Nature Nanotechnology, 2008, 3: 31-35.
  • 4Wang C, Zhou Y, Ge M Y, et al. Large-Scale Synthesis of SnO2 Nanosheets with High Lithium Storage Capacity [J]. ,Z Am. Chem. Soc., 2010. 132:46-47.
  • 5Lou XW, Wang Y, Yuan CL, et al. Template-Free Synthesis of SnO2 Hollow Nanostructures with High Lithium torage Capacity[J]. Adv. Mater., 2006, 18(17): 2 325-2 329.
  • 6Chen J, XU LN, Li WY, et al. a-Fe203 Nanotubes in Gas Sensor and Lithium-lon Battery Applications [J]. Adv. Mater., 2005, 17:582-586.
  • 7Reddy MV, Yu T, Sow CH. a-Fe:O3 Nanoflakes as an Anode Material for Li-Ion Batteries [J]. Ad. Funct.Mater., 2007, 17:2 792-2 799.
  • 8Cui ZM, Hang LY, Song WG, et al. High-yield Gas-liquid Interfacial Synthesis of Highly Dispersed Fe304 Nanocrystals and Their Application in Lithium-Ion Batteries [J]. Chem. Mater., 2009, 21 (6): 1 162-1 166.
  • 9Li YG, Tan B, Wu YY. Mesoporous Co304 Nanowire Arrays for Lithium Ion Batteries with High Capacity and Rate Capability [J]. Nano Lett., 2008, 8 (1): 265-270.
  • 10Cai Y, Liu S, Yin XM, et al. Facile Preparation of Porous One- Dimensional Mn203 Nanostructures and Their Application as Anode Materials for Lithium-Ion Batteries [J]. Physica E: Low-dimensional Systems andNanostrucmres, 2010, 43(1): 70-75.

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