A tin film of 320 nm in thickness on Cu foil and its composite film with graphite of~50 nm in thickness on it were fabricated by magnetron sputtering.The surface morphology,composition,surface distributions of alloy elements,and lithium intercalation/de-intercalation behaviors of the fabricated films were characterized by X-ray diffraction (XRD),scanning electron microscopy (SEM),electron probe microanalyzer (EPMA),X-ray photoelectron spectroscopy (XPS),inductively coupled plasma atomic emission spectrometry (ICP),cyclic voltammetry (CV),and galvanostatic charge/discharge (GC) measurements.It is found that the lithium intercalation/de-intercalation behavior of the Sn film can be significantly improved by its composite with graphite.With cycling,the discharge capacity of the Sn film without composite changes from 570 mAh/g of the 2nd cycle to 270 mAh/g of the 20th cycle,and its efficiency for the discharge and charge is between 90% and 95%.Nevertheless,the discharge capacity of the composite Sn/C film changes from 575 mAh/g of the 2nd cycle to 515 mAh/g of the 20th cycle,and its efficiency for the discharge and charge is between 95% and 100%.The performance improvement of tin by its composite with graphite is ascribed to the retardation of the bulk fin cracking from volume change during lithium intercalation and de-intercalation,which leads to the pulverization of fin.
参考文献
[1] | Courteny I;Dahn J .Electrochemical and in situ X-ray diffraction studies of the reaction of lithium with tin oxide composites[J].Journal of the Electrochemical Society,1997,144:2045. |
[2] | Mukaibo H;Momma T;Osaka T .Changes of electro-deposited Sn-Ni alloy thin film for lithium ion battery anodes during charge discharge cycling[J].Journal of Power Sources,2005,146:457. |
[3] | Fang T;Hsiao L Y;Duh J G;Sheen S R .A novel composite negative electrode consist of multiphase Sn compounds and mesophase graphite powders for lithium ion batteries[J].Journal of Power Sources,2006,160:536. |
[4] | Yuan L;Konstantinov K;Wang G X;Liu H K Dou S X .Nano-structured SnO2-carbon composites obtained by in situ spray pyrolysis method as anodes in lithium batteries[J].Journal of Power Sources,2005,146:180. |
[5] | Li C M;Zhang R Y;Li W S;Zhao L Z Hu S J .Capacity fade mechanism of metal tin as anode for Li ion battery[J].Chinese Journal of Power Sources,2008,32(01):21. |
[6] | Tan C L;Lv D S;Li W S;Xu M Q,Zhou D Y,and Hu S J .Study of Sn/Ni alloy films electrodeposited as anode materials for Li-ion batteries[J].Rare Metal Materlals and Engineering,2008,37:472. |
[7] | Mohamedi M;Lee SJ;Takahashi D;Nishizawa M,Itoh T Uchida L .Amorphous tin oxide films:preparation and characterization as an anode active material for lithium ion batteries[J].Electrochimica Acta,2001,46:1161. |
[8] | Morimoto H;Tobishima S I;Negishi H .Anode behavior of electroplated rough surface Sn thin films for lithium-ion batteries[J].Journal of Power Sources,2005,146:469. |
[9] | 李昌明,黄启明,张仁元,李伟善,赵灵智,胡社军.电沉积制备的两种形貌Sn薄膜锂离子嵌入电极性能的比较[J].金属学报,2007(05):515-520. |
[10] | Wang G S;Ahn J H;Lindsay M J;Sun L Bradhurst D H,Dou S X Liu H K .Graphite-tin composites as anode materials for lithium-ion batteries[J].Journal of Power Sources,2001,97-98:211. |
[11] | Evans J F;Kuwana T .Introduction of functional groups onto carbon electrodes via treatment with radio-frequency plasmas[J].Analytical Chemistry,1979,51:358. |
[12] | Mackie NM.;Fisher ER.;Castner DG. .Characterization of pulsed-plasma-polymerized aromatic films[J].Langmuir: The ACS Journal of Surfaces and Colloids,1998(5):1227-1235. |
[13] | Zhang Xiangjun,Huang Songtao,Wu Guoliang,Lu Shigang,CAI Zhenping.Tin oxide-graphite composite for lithium storage material in lithium-ion batteries[J].稀有金属(英文版),2003(03):226-229. |
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