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采用基于密度泛函理论的第一性原理平面波论调势方法计谋了Li-Si各种合金相的物理性质和电化学性能.结果表明:除了在反应过程中生成传统的固态电解持SEI膜之外形成的Li12Si7合金相也是部分导致首次不可逆容量损失的重要原因.另外,采用射频磁控溅射制备了纯Si薄膜电极,并运用XRD、徨伏安CV、恒流充放电CC表征和测试了材料的结构和电化学性能,结果表明首次不可逆容量损失非常大,无定型结构能有交抑制体积膨胀和改善徨性能.

An ab initio method of the first-principles plane-wave pseudopotentials based on the density functional theory has been used to calculate the physical character and electrochemical performance of various alloy phases in Li-Si alloy. The results show that besides the growth of solid electrolyte interphase (SEI), the formation of Li12Si7 alloy phase also partly leads to the initial irreversible capacity loss. In addition, the pure silicon thin film electrode was prepared by the radio frequency (RF) magnetic sputtering on copper foil collector as anode materials. The structural and electrochemical characteristics of Li-Si alloy were examined using X-ray diffraction (XRD), cyclic voltammogram (CV) and repeatedly constant current charge/discharge (CC). The results show that the fast irreversible capacity loss is very large and amorphous structure can accommodate the large volume expansions and improve cyclic performance.

参考文献

[1] Kang K;Meng YS;Breger J;Grey CP;Ceder G .Electrodes with high power and high capacity for rechargeable lithium batteries.[J].Science,2006(5763):977-980.
[2] Zhao J J;Buldum A;Han J et al.[J].Physical Review Letters,2000,A85:1706.
[3] Noriyuki T;Ryuji O;Masahisa F et al.[J].Journal of Power Sources,2002,107:48.
[4] Mukaibo H;Momma T;Osaka T .[J].Journal of Power Sources,2005,146:457.
[5] Lee J H;Lee H Y;Ohb S M et al.[J].Journal of Power Sources,2007,166:250.
[6] Limthongkul P;Jang Y;Dudney N J et al.[J].Journal of Power Sources,2003,119-121:604.
[7] Gao B.;Fleming L.;Zhou O.;Sinha S. .Alloy formation in nanostructured silicon[J].Advanced Materials,2001(11):816-819.
[8] Zhou G W;Li H;Sun H P et al.[J].Applied Physics Letters,1999,75:2447.
[9] Ning G;White R E;Popov B N .[J].Electrochimica Acta,2006,51:2012.
[10] Ramasamy R P;Lee J W;Popov B N .[J].Journal of Power Sources,2007,166:266.
[11] Ceder G;Chiang Y M;Sadoway D R et al.[J].Nature,1998,392:694.
[12] Hou X H;Hu S J;Li W S et al.[J].Chin Phys B,2008,17:3422.
[13] Stearns L A;Gryko J;Diefenhacher J et al.[J].Journal of Solid State Chemistry,2003,173:251.
[14] Nesper R;yon Schnering H G;Curda J .[J].Chemische Beriehte,1986,119:3576.
[15] Axel H;Schaefer H;Weiss A .[J].Zeitschrifi fuer Kristallographie,1990,193:217.
[16] von Schnering H G;Nesper R;Tebha K F et al.[J].Zeitschrift fur Metallkunde,1980,71:357.
[17] Frank U;Mueller W;Schaefer H .[J].Organische Chemie,1975,30:10.
[18] Schaefer H;Axel H;Weiss A .[J].Kristallografiya,1965,20:1010.
[19] Nesper R;von Schnering H G .[J].Journal of Solid State Chemistry,1987,70:48.
[20] Axel H;Schaefer H;Weiss A .[J].Organische Chemie,1966,21:115.
[21] Segall MD.;Lindan PJD.;Probert MJ.;Pickard CJ.;Hasnip PJ.;Clark SJ. Payne MC. .First-principles simulation: ideas, illustrations and the CASTEP code[J].Journal of Physics. Condensed Matter,2002(11):2717-2744.
[22] Vanderbilt D .[J].Physical Review B:Condensed Matter,1990,41:7892.
[23] Perdew J P;Chevary J A;Vosko S H et al.[J].Physical Review B:Condensed Matter,1992,46:6671.
[24] Courtney IA.;Mao O.;Hafner J.;Dahn JR.;Tse JS. .Ab initio calculation of the lithium-tin voltage profile[J].Physical Review.B.Condensed Matter,1998(23):15583-15588.
[25] Hou X H;Hu S J;Li W S et al.[J].Acta Physica Sinica,2008,57:3422.
[26] Li Jing Dahn J R .[J].Journal of the Electrochemical Society,2007,154:A156.
[27] Dimov N;Kugino S;Yoshio M .[J].Electrochimica Acta,2003,48:1579.
[28] Park M S;Rajendran S;Kang Y M et al.[J].Journal of Power Sources,2006,158:650.
[29] Park MS;Kang YM;Rajendran S;Kwon HS;Lee JY .Si-Ni-Carbon composite synthesized using high energy mechanical milling for use as an anode in lithium ion batteries[J].Materials Chemistry and Physics,2006(2/3):496-502.
[30] Lee K S;Kim Y L;Lee S M .[J].Journal of Power Sources,2005,146:464.
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