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¸Õ¸ÕÔÚJMCÉÏ¿´µ½µÄһƪLiFePO4£¬ºÃÏñµç»¯Ñ§ÐÔÄÜÒ²²»Õ¦Ñù°¡ ¾ÓÈ»»¹·¢ÁË¡¾Ã»ÓÐÈÎºÎÆçÊӵĺ¬Òå¡¿ ~_~ http://www.rsc.org/Publishing/Jo ... asp?Type=AdvArticle First published on the web: 27 October 2009 Up-scalable synthesis, structure and charge storage properties of porous microspheres of LiFePO4@C nanocomposites Feng Yu, Jing-Jie Zhang, Yan-Feng Yang and Guang-Zhi Song, J. Mater. Chem., 2009 DOI: 10.1039/b916938e |
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2Â¥2009-10-28 07:28:33
wpzzuli
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3Â¥2009-10-28 07:57:10
qssky
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5Â¥2009-10-28 08:52:17
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6Â¥2009-10-28 09:24:13
fishwater
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7Â¥2009-10-28 11:22:50
fishwater
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¡¾ÎÒ¿´µ½µÄÕªÒª¡¿ Article citation: Feng Yu, J. Mater. Chem., 2009, DOI: 10.1039/b916938e -------------------------------------------------------------------------------- Up-scalable synthesis, structure and charge storage properties of porous microspheres of LiFePO4@C nanocomposites Feng Yu, Jing-Jie Zhang, Yan-Feng Yang and Guang-Zhi Song -------------------------------------------------------------------------------- Novel porous micro-spherical aggregates of LiFePO4@C nanocomposites have been synthesized in large quantities via an improved sol¨Cgel method combined with spray drying technology (sol¨Cgel-SD method), which required no surfactants or templates. With this new procedure, a precursor was prepared through the process of sol¨Cgel and subsequent spray drying. A series of analyses, including X-ray diffraction (XRD), X-ray photoelectron spectroscopy (XPS), energy dispersive X-ray (EDX), scanning electron microscopy (SEM), high-resolution transmission electron microscopy (HRTEM) and a combined system focused ion beam (FIB)/SEM were performed after the as-obtained LiFePO4@C was heat-treated at 700 ¡ãC for 12 h. The as-obtained LiFePO4@C had a large specific surface area (20.2 m2g-1), with an average nano-size of 32 nm and a main pore diameter of 45 nm. Contact with electrolyte occurred easily, which facilitated the electrical and lithium ion diffusion. In comparison with nano-sized LiFePO4@C particles prepared by a sol¨Cgel method, the current product presented a high coulombic efficiency of 97.2%, a large reversible capacity of 133.8 mAh/g and an excellent capacity retention rate close to 100% after 50 cycles. The sol¨Cgel-SD method provides an additional strategy to easily deal with gelatin and shows potential for use in the preparation of similar superstructures of other composites. |
8Â¥2009-10-28 11:29:29
fishwater
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9Â¥2009-10-28 14:45:03
cybwho
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