文化大學機構典藏 CCUR:Item 987654321/2602
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    Please use this identifier to cite or link to this item: https://irlib.pccu.edu.tw/handle/987654321/2602


    Title: Size effect of tin oxide nanoparticles on high capacity lithium battery anode materials
    Authors: Chen, Yi-Chun
    Chen, Jin-Ming
    Huang, Yue-Hao
    Lee, Yu-Run
    Shih, Han C.
    Contributors: 化材系
    Keywords: tin oxide
    core-shell
    SnO2
    lithium batteries
    anode materials
    Date: 2007
    Issue Date: 2009-11-09 09:32:38 (UTC+8)
    Abstract: Tin oxide anode materials have a high reversible capacity for secondary lithium ion batteries. However, the volume expansion of tin oxide is known to reduce the battery cycle life. Nanocomposite anode materials were thus synthesized using a sol-gel method to solve this problem. The nanocomposite materials (SnO2/C) have a core-shell structure. The core is made of commercial graphite (similar to 10 gm) and the shell is made of the tin oxide nanoparticles. The morphology and the nanostructure were characterized by SEM (JSM-6500F) and the results of electrochemical tests were analyzed using an Arbin BT2400 battery tester. The tin oxide nanoparticles (similar to 20 nm) uniformly dispersed on the surface of commercial graphite. The tin oxide nanoparticles had a markedly greater cyclability than the micro-tin oxide particles. The tin oxide nanoparticles are believed to reduce the effect of volume expansion. It is apparent that the nanocomposite structure (SnO2/C) inhibits the volume expansion of the tin oxide anode materials. (c) 2007 Published by Elsevier B.V.
    Relation: SURFACE & COATINGS TECHNOLOGY Volume: 202 Issue: 4-7 Pages: 1313-1318
    Appears in Collections:[Department of Chemical & Materials Engineering] journal articles

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