Corrigendum to "Laser sintered graphene nickel nanocomposites" [J. Mater. Process. Technol. 231 (2016) 143–150] Journal of Materials Processing Technology, Volume 235, September 2016, Pages 105 Zengrong Hu, Guoquan Tong, Dong Lin, Qiong Nian, Jiayi Shao, Yaowu Hu, Majib Saei, Shengyu Jin, Gary J. Chen | Three-dimensional nitrogen-doped graphene frameworks anchored with bamboo-like tungsten oxide nanorods as high performance anode materials for lithium ion batteries Original Research Article Journal of Power Sources, Volume 320, 15 July 2016, Pages 231-238 Xinyuan Gu, Feilong Wu, Bingbing Lei, Jing Wang, Ziliang Chen, Kai Xie, Yun Song, Dalin Sun, Lixian Sun, Huaiying Zhou, Fang Fang
Graphical abstractThe as-prepared r-WO3/3DNGF with an optimized content of 20 wt% 3DNGF exhibits the best rate performance because of the most homogeneous 3DNGF and well-anchored bamboo-like WO3 nanorods, which alleviate the volume change upon Li+ intercalation/extraction, improve electronic conductivity and facilitate lithium ion diffusion.
 | Growth Dynamics of Solid Electrolyte Interphase Layer on SnO2 Nanotubes Realized by Graphene Liquid Cell Electron Microscopy Nano Energy, Available online 29 April 2016, Pages Jun Young Cheong, Joon Ha Chang, Hyeon Kook Seo, Jong Min Yuk, Jae Won Shin, Jeong Yong Lee, Il-Doo Kim
Graphical abstractIn situ TEM observation of deposition of decomposed electrolytes and formation of SEI layer on active material was successfully realized using GLC. From in situ TEM observations, growth model of SEI layer has also been suggested, which provides more insight on growth dynamics of SEI layer.

| Hierarchical porous reduced graphene oxide/SnO2 networks as highly stable anodes for lithium-ion batteries Original Research Article Electrochimica Acta, Available online 28 April 2016, Pages Dan Zhou, Wei-Li Song, Xiaogang Li, Li-Zhen Fan
Graphical abstract

Herein, hierarchical porous rGO/SnO2 composite was designed using a silica template assisted nanocasting process approach, where silica as the template for anchoring SnO2 nanoparticles in the porous rGO/SnO2 framework. The resultant porous rGO/SnO2 anode delivers substantially enhanced cyclability and rate capacity over pure SnO2, which promises great potential in the scalable fabrication of advanced anode materials with improved lithium storage for LIBs. | |
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