期刊文献+

Coaxial Si/anodic titanium oxide/Si nanotube arrays for lithium-ion battery anodes 被引量:1

Coaxial Si/anodic titanium oxide/Si nanotube arrays for lithium-ion battery anodes
原文传递
导出
摘要 Silicon (Si) has the highest known theoretical specific capacity (3,590 mAh/g for Li1.5Si4, and 4,200 mAh/g for Li22Si4) as a lithium-ion battery anode, and has attracted extensive interest in the past few years. However, its application is limited by poor cyclability and early capacity fading due to significant volume changes during lithiation and delithiation processes. In this work, we report a coaxial silicon/anodic titanium oxide/silicon (Si-ATO--Si) nanotube array structure grown on a titanium substrate demonstrating excellent electrochemical cyclability. The ATO nanotube scaffold used for Si deposition has many desirable features, such as a rough surface for enhanced Si adhesion, and direct contact with the Ti substrate working as current collector. More importantly, our ATO scaffold provides a rather unique advantage in that Si can be loaded on both the inner and outer surfaces, and an inner pore can be retained to provide room for Si volume expansion. This coaxial structure shows a capacity above 1,500 mAh/g after 100 cycles, with less than 0.05% decay per cycle. Simulations show that this improved performance can be attributed to the lower stress induced on Si layers upon lithiation/delithiation compared with some other recently reported Si-based nanostructures.
出处 《Nano Research》 SCIE EI CAS CSCD 2013年第3期182-190,共9页 纳米研究(英文版)
关键词 lithium ion battery anodic titanium oxide silicon anode 锂离子电池 纳米管阵列 同轴结构 氧化钛 Si 阳极 早期容量衰减
  • 相关文献

参考文献37

  • 1Scrosati, B. Battery technology-challenge of portable power Nature 1995, 373, 557-558.
  • 2Tarascon, J. M.; Armand, M. Issues and challenges facing rechargeable lithium batteries. Nature 2001, 414, 359-367.
  • 3Armand, M.; Tarascon, J. M. Building better batteries. Nature 2008, 451, 652-657.
  • 4Rolison, D. R.; Nazar, L. F. Electrochemical energy storage to power the 21st century. MRSBull. 2011, 36, 486-493.
  • 5Goodenough, J. B.; Kim, Y. Challenges for rechargeable Li batteries. Chem. Mater. 2010, 22, 587-603.
  • 6Liu, J.; Cao, G. Z.; Yang, Z. G.; Wang, D. H.; Dubois, D.; Zhou, X. D.; Graft, G. L.; Pederson, L. R.; Zhang, J. G. Oriented nanostructures for energy conversion and storage. ChemSusChem 2008, 1,676-697.
  • 7Oumellal, Y.; Rougier, A.; Nazri, G. A.; Tarascon, J. M.; Aymard, L. Metal hydrides for lithium-ion batteries. Nat. Mater. 2008, 7, 916-921.
  • 8Bruce, P. G.; Scrosati, B.; Tarascon, J. M. Nanomaterials for rechargeable lithium batteries. Angew. Chem., Int. Ed. 2008, 47, 2930-2946.
  • 9Sun, Y. K.; Myung, S. T.; Park, B. C.; Prakash, J.; Belharouak, I.; Amine, K. High-energy cathode material for long-life and safe lithium batteries, Nat. Mater. 2009, 8, 320-324.
  • 10Huang, J. Y.; Zhong, L.; Wang, C. M.; Sullivan, J. P.; Xu, W.; Zhang, L. Q.; Mao, S. X.; Hudak, N. S.; Liu, X. H.; Subramanian, A. et al. In situ observation of the electro- chemical lithiation of a single Sn02 nanowire electrode. Science 2010, 330, 1515-1520.

同被引文献8

引证文献1

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部