石墨烯作为锂离子电池负极材料时,比克容量是石墨的两倍,但是纯石墨烯因其在充放电过程中团聚,导电循环性能差.为了延长石墨烯的循环寿命,一种有效的方法是在石墨烯中加入过渡金属氧化物(CoOx,CuOx,NiOx,FeOx和MnOx等).这些过渡金属氧化物比克容量高(700~1000 mAh/g),但是在充放电过程中发生体积膨胀,导致其循环性能差.过渡金属氧化物与石墨烯复合后,能够弥补彼此的缺点,具有优异的电化学性能.综述了石墨烯/过渡金属氧化物复合物在锂离子电池负极材料上的应用,并研究了石墨烯加入后对复合材料的性能提升的原因.
参考文献
[1] | Bolotin, KI;Sikes, KJ;Jiang, Z;Klima, M;Fudenberg, G;Hone, J;Kim, P;Stormer, HL .Ultrahigh electron mobility in suspended graphene[J].Solid State Communications,2008(9/10):351-355. |
[2] | Balandin AA;Ghosh S;Bao WZ;Calizo I;Teweldebrhan D;Miao F;Lau CN .Superior thermal conductivity of single-layer graphene[J].Nano letters,2008(3):902-907. |
[3] | Chae HK;Siberio-Perez DY;Kim J;Go Y;Eddaoudi M;Matzger AJ .A route to high surface area, porosity and inclusion of large molecules in crystals[J].Nature,2004(6974):523-527. |
[4] | Changgu Lee;Xiaoding Wei;Jeffrey W. Kysar;James Hone .Measurement of the Elastic Properties and Intrinsic Strength of Monolayer Graphene[J].Science,2008(5887):385-388. |
[5] | Moon I K;Kim J I;Lee H et al.2D graphene oxide nanosheets as an adhesive over-coating layer for flexible transparent conductive electrodes[J].Sci Rep,2013,3:1112. |
[6] | Shang J;Ma L;Li J et al.The origin of fluorescence from graphene oxide[J].Sci Rep,2012,2:792. |
[7] | Sheng K;Sun Y;Li C et al.Ultrahigh-rate supercapacitors based on eletrochemically reduced graphene oxide for ac line-filtering[J].Sci Rep,2012,2:247. |
[8] | El-Kady M F;Strong V;Dubin S et al.Laser scribing of high-performance and flexible graphene-based electrochemical capacitors[J].SCIENCE,2012,335(6074):1326. |
[9] | Gabor N M;Song J C;Ma Q et al.Hot carrier-assisted intrinsic photoresponse in graphene[J].SCIENCE,2011,334(6056):648. |
[10] | Miller J R;Outlaw R A;Holloway B C .Graphene double-layer capacitor with ac line-filtering performance[J].SCIENCE,2010,329(5999):1637. |
[11] | Rutter G M;Crain J N;Guisinger N P et al.Scattering and interference in epitaxial graphene[J].SCIENCE,2007,317(5835):219. |
[12] | Wei Z;Wang D;Kim S et al.Nanoscale tunable reduction of graphene oxide for graphene electronics[J].SCIENCE,2010,328(5984):1373. |
[13] | Sharma P;Bhalla V;Dravid V et al.Enhancing electrochemical detection on graphene oxide-CNT nanostructured electrodes using magneto-nanobioprobes[J].Sci Rep,2012,2:877. |
[14] | Yang S;Sun Y;Chen L et al.Porous iron oxide ribbons grown on graphene for high-performance lithium storage[J].Sci Rep,2012,2:427. |
[15] | Compton, OC;Nguyen, ST .Graphene Oxide, Highly Reduced Graphene Oxide, and Graphene: Versatile Building Blocks for Carbon-Based Materials[J].Small,2010(6):711-723. |
[16] | Zhang, LM;Xia, JG;Zhao, QH;Liu, LW;Zhang, ZJ .Functional Graphene Oxide as a Nanocarrier for Controlled Loading and Targeted Delivery of Mixed Anticancer Drugs[J].Small,2010(4):537-544. |
[17] | Caiyun Wang;Dan Li;Chee O. Too .Electrochemical Properties of Graphene Paper Electrodes Used in Lithium Batteries[J].Chemistry of Materials: A Publication of the American Chemistry Society,2009(13):2604-2606. |
[18] | Yoo E;Kim J;Hosono E;Zhou H;Kudo T;Honma I .Large reversible Li storage of graphene nanosheet families for use in rechargeable lithium ion batteries[J].Nano letters,2008(8):2277-2282. |
[19] | Shuangqiang Chen;Peng Chen;Yong Wang .Carbon nanotubes grown in situ on graphene nanosheets as superior anodes for Li-ion batteries[J].Nanoscale,2011(10):4323-4329. |
[20] | Bhardwaj, T.;Antic, A.;Pavan, B.;Barone, V.;Fahlman, B.D. .Enhanced electrochemical lithium storage by graphene nanoribbons[J].Journal of the American Chemical Society,2010(36):12556-12558. |
[21] | Haibo Wang;Chuanjian Zhang;Zhihong Liu .Nitrogen-doped graphene nanosheets with excellent lithium storage properties[J].Journal of Materials Chemistry: An Interdisciplinary Journal dealing with Synthesis, Structures, Properties and Applications of Materials, Particulary Those Associated with Advanced Technology,2011(14):5430-5434. |
[22] | Dengyu Pan;Song Wang;Bing Zhao .Li Storage Properties of Disordered Graphene Nanosheets[J].Chemistry of Materials: A Publication of the American Chemistry Society,2009(14):3136-3142. |
[23] | Wang G X;Chen Y;Konstantinov K et al.Investigation of cobalt oxides as anode materials for Li-ion batteries[J].Journal of Power Sources,2002,109(01):142. |
[24] | Poizot P;Laruelle S;Grugeon S et al.Nano-sized transition-metaloxides as negative-electrode materials for lithiumion batteries[J].NATURE,2000,407(6803):496. |
[25] | Ming J;Park J B;Sun Y K.Encapsulation of metal oxide nanocrystals into porous carbon with ultrahigh performances in lithium-ion battery[J].ACS Appl Mater Interf,2013 |
[26] | Jixin Zhu;Ting Zhu;Xiaozhu Zhou .Facile synthesis of metal oxide/reduced graphene oxide hybrids with high lithium storage capacity and stable cyclability[J].Nanoscale,2011(3):1084-1089. |
[27] | Kang Y M;Song M S;Kim J H et al.A study on the charge-discharge mechanism of Co3 O4 as an anode for the Li ion secondary battery[J].Electrochimica Acta,2005,50(18):3667. |
[28] | Zichao Yang;Jingguo Shen;Lynden A. Archer .An in situ method of creating metal oxide-carbon composites and their application as anode materials for lithium-ion batteries[J].Journal of Materials Chemistry: An Interdisciplinary Journal dealing with Synthesis, Structures, Properties and Applications of Materials, Particulary Those Associated with Advanced Technology,2011(30):11092-11097. |
[29] | Wei-Ming Zhang;Xing-Long Wu;Jin-Song Hu;Yu-Guo Guo;Li-Jun Wan .Carbon Coated Fe_3o_4 Nanospindles As A Superior Anode Material For Lithium-ion Batteries[J].Advanced functional materials,2008(24):3941-3946. |
[30] | Shu-Fa Zheng;Jin-Song Hu;Liang-Shu Zhong .Introducing Dual Functional CNT Networks into CuO Nanomicrospheres toward Superior Electrode Materials for Lithium-Ion Batteries[J].Chemistry of Materials: A Publication of the American Chemistry Society,2008(11):3617-3622. |
[31] | In situ synthesis of SnO_2/graphene nanocomposite and their application as anode material for lithium ion battery[J].Materials Letters,2010(19):2076-2079. |
[32] | Qunt'mg Qu;Shub'm Yang;Xinliang Feng .2D Sandwich-like Sheets of Iron Oxide Grown on Graphene as High Energy Anode Material for Supercapacitors[J].Advanced Materials,2011(46):5574-5580. |
[33] | Haixin Chang;Guangfeng Wang;An Yang;Xiaoming Tao;Xuqing Liu;Youde Shen;Zijian Zheng .A Transparent, Flexible, Low-Temperature, and Solution- Processible Graphene Composite Electrode[J].Advanced functional materials,2010(17):2893-2902. |
[34] | Xuyang Wang;Xufeng Zhou;Ke Yao .A SnO2/graphene composite as a high stability electrode for lithium ion batteries[J].Carbon: An International Journal Sponsored by the American Carbon Society,2011(1):133-139. |
[35] | Peng, C.;Chen, B.;Qin, Y.;Yang, S.;Li, C.;Zuo, Y.;Liu, S.;Yang, J. .Facile ultrasonic synthesis of coo quantum dot/graphene nanosheet composites with high lithium storage capacity[J].ACS nano,2012(2):1074-1081. |
[36] | Xing Zhang;Zheng Xing;Lili Wang .Synthesis of MnO@C core-shell nanoplates with controllable shell thickness and their electrochemical performance for lithium-ion batteries[J].Journal of Materials Chemistry: An Interdisciplinary Journal dealing with Synthesis, Structures, Properties and Applications of Materials, Particulary Those Associated with Advanced Technology,2012(34):17864-17869. |
[37] | Feng Dan Wu;Yong Wang .Self-assembled echinus-like nanostructures of mesoporous CoO nanorod@CNT for lithium-ion batteries[J].Journal of Materials Chemistry: An Interdisciplinary Journal dealing with Synthesis, Structures, Properties and Applications of Materials, Particulary Those Associated with Advanced Technology,2011(18):6636-6641. |
[38] | Shuang Qiang Chen;Yong Wang .Microwave-assisted synthesis of a Co3O4-graphene sheet-on-sheet nanocomposite as a superior anode material for Li-ion batteries[J].Journal of Materials Chemistry: An Interdisciplinary Journal dealing with Synthesis, Structures, Properties and Applications of Materials, Particulary Those Associated with Advanced Technology,2010(43):9735-9739. |
[39] | Li, B.;Cao, H.;Shao, J.;Li, G.;Qu, M.;Yin, G. .Co_3O_4@graphene composites as anode materials for high-performance lithium ion batteries[J].Inorganic Chemistry: A Research Journal that Includes Bioinorganic, Catalytic, Organometallic, Solid-State, and Synthetic Chemistry and Reaction Dynamics,2011(5):1628-1632. |
[40] | Yang S B;Cui G L;Pang S P et al.Fabrication of cobalt and cobalt oxide/graphene composites:Towards high-performance anode materials for lithium ion batteries[J].Chemsuschem,2010,3(02):236. |
[41] | Haegyeom Kim;Dong-Hwa Seo;Sung-Wook Kim .Highly reversible Co3O4/graphene hybrid anode for lithium rechargeable batteries[J].Carbon: An International Journal Sponsored by the American Carbon Society,2011(1):326-332. |
[42] | Wu, Z.-S.;Ren, W.;Wen, L.;Gao, L.;Zhao, J.;Chen, Z.;Zhou, G.;Li, F.;Cheng, H.-M. .Graphene anchored with Co_3O_4 nanoparticles as anode of lithium ion batteries with enhanced reversible capacity and cyclic performance[J].ACS nano,2010(6):3187-3194. |
[43] | He, YS;Bai, DW;Yang, XW;Chen, J;Liao, XZ;Ma, ZF .A Co(OH)(2)-graphene nanosheets composite as a high performance anode material for rechargeable lithium batteries[J].Electrochemistry communications,2010(4):570-573. |
[44] | Yongming Sun;Xianluo Hu;Wei Luo .Ultrathin CoO/Graphene Hybrid Nanosheets: A Highly Stable Anode Material for Lithium-Ion Batteries[J].The journal of physical chemistry, C. Nanomaterials and interfaces,2012(39):20794-20799. |
[45] | Rahul Sahay;Palaniswamy Suresh Kumar;Vanchiappan Aravindan .High Aspect Ratio Electrospun CuO Nanofibers as Anode Material for Lithium-Ion Batteries with Superior Cycleability[J].The journal of physical chemistry, C. Nanomaterials and interfaces,2012(34):18087-18092. |
[46] | Sungwook Ko;Jung-In Lee;Hee Seung Yang;Soojin Park;Unyong Jeong .Mesoporous CuO Particles Threaded with CNTs for High-Performance Lithium-Ion Battery Anodes[J].Advanced Materials,2012(32):4451-4456. |
[47] | Bao Wang;Xing-Long Wu;Chun-Ying Shu .Synthesis of CuO/graphene nanocomposite as a high-performance anode material for lithium-ion batteries[J].Journal of Materials Chemistry: An Interdisciplinary Journal dealing with Synthesis, Structures, Properties and Applications of Materials, Particulary Those Associated with Advanced Technology,2010(47):10661-10664. |
[48] | Y. J. Mai;X. L. Wang;J. Y. Xiang;Y. Q. Qiao;D. Zhang;C. D. Gu;J. P. Tu .CuO/graphene composite as anode materials for lithium-ion batteries[J].Electrochimica Acta,2011(5):2306-2311. |
[49] | Jisheng Zhou;Lulu Ma;Huaihe Song;Bin Wu;Xiaohong Chen .Durable high-rate performance of CuO hollow nanoparticles/graphene-nanosheet composite anode material for lithium-ion batteries[J].Electrochemistry communications,2011(12):1357-1360. |
[50] | Li Qiang Lu;Yong Wang .Sheet-like and fusiform CuO nanostructures grown on graphene by rapid microwave heating for high Li-ion storage capacities[J].Journal of Materials Chemistry: An Interdisciplinary Journal dealing with Synthesis, Structures, Properties and Applications of Materials, Particulary Those Associated with Advanced Technology,2011(44):17916-17921. |
[51] | Lu, L.Q.;Wang, Y. .Facile synthesis of graphene-supported shuttle- and urchin-like CuO for high and fast Li-ion storage[J].Electrochemistry communications,2012(1):82-85. |
[52] | Wang G;Liu T;Xie X et al.Structure and electrochemical performance of Fe3 O4/graphene nanocomposite as anode material for lithium-ion batteries[J].Materials Chemistry and Physics,2011,128(03):336. |
[53] | Yuqin Zou;Jin Kan;Yong Wang .Fe2O3-Graphene Rice-on-Sheet Nanocomposite for High and Fast Lithium Ion Storage[J].The journal of physical chemistry, C. Nanomaterials and interfaces,2011(42):20747-20753. |
[54] | Jing Su;Minhua Cao;Ling Ren .Fe3O4-Graphene Nanocomposites with Improved Lithium Storage and Magnetism Properties[J].The journal of physical chemistry, C. Nanomaterials and interfaces,2011(30):14469-14477. |
[55] | Guangmin Zhou;Da-Wei Wang;Feng Li .Graphene-Wrapped Fe3O4 Anode Material with Improved Reversible Capacity and Cyclic Stability for Lithium Ion Batteries[J].Chemistry of Materials: A Publication of the American Chemistry Society,2010(18):5306-5313. |
[56] | Li, B.;Cao, H.;Shao, J.;Qu, M. .Enhanced anode performances of the Fe_3O_4-Carbon-rGO three dimensional composite in lithium ion batteries[J].Chemical communications,2011(37):10374-10376. |
[57] | Behera, S.K. .Enhanced rate performance and cyclic stability of Fe_3O _4-graphene nanocomposites for Li ion battery anodes[J].Chemical communications,2011(37):10371-10373. |
[58] | Chen D;Ji G;Ma Y et al.Graphene-encapsulated hollow Fe3 O4 nanoparticle aggregates As a high-performance anode material for lithium ion batteries[J].ACS Appl Mater Interf,2011,3(08):3078. |
[59] | Chen W;Li S;Chen C et al.Self-assembly and embedding of nanoparticles by in situ reduced graphene for preparation of a 3D graphene/nanoparticle aerogel[J].Advanced Materials,2011,23(47):5679. |
[60] | Yuqin Zou;Yong Wang .NiO nanosheets grown on graphene nanosheets as superior anode materials for Li-ion batteries[J].Nanoscale,2011(6):2615-2620. |
[61] | Mai Y J;Tu J P;Gu C D et al.Graphene anchored with nickel nanoparticles as a high-performance anode material for lithium ion batteries[J].Journal of Power Sources,2012,209:1. |
[62] | Hao Liu;Guoxiu Wang;Jian Liu .Highly ordered mesoporous NiO anode material for lithium ion batteries with an excellent electrochemical performance[J].Journal of Materials Chemistry: An Interdisciplinary Journal dealing with Synthesis, Structures, Properties and Applications of Materials, Particulary Those Associated with Advanced Technology,2011(9):3046-3052. |
[63] | Wang, Z.-L.;Xu, D.;Huang, Y.;Wu, Z.;Wang, L.-M.;Zhang, X.-B. .Facile, mild and fast thermal-decomposition reduction of graphene oxide in air and its application in high-performance lithium batteries[J].Chemical communications,2012(7):976-978. |
[64] | Li B J;Cao H Q;Shao J et al.Improved performances of beta-Ni(OH)2@reduced-graphene-oxide in Ni-MH and Liion batteries[J].Chemistry Communications,2011,47(11):3159. |
[65] | Zhou, G.;Wang, D.-W.;Yin, L.-C.;Li, N.;Li, F.;Cheng, H.-M. .Oxygen bridges between nio nanosheets and graphene for improvement of lithium storage[J].ACS nano,2012(4):3214-3223. |
[66] | Zhang, J.;Wang, R.;Yang, X.;Lu, W.;Wu, X.;Wang, X.;Li, H.;Chen, L. .Direct observation of inhomogeneous solid electrolyte interphase on MnO anode with atomic force microscopy and spectroscopy[J].Nano letters,2012(4):2153-2157. |
[67] | Xing L;Cui C;Ma C et al.Facile synthesis of alphaMnO2/graphene nanocomposites and their high performance as lithium-ion battery anode[J].Materials Letters,2011,65(14):2104. |
[68] | Chien-Te Hsieh;Chi-Yuan Lin;Jia-Yi Lin .High reversibility of Li intercalation and de-intercalation in MnO-attached graphene anodes for Li-ion batteries[J].Electrochimica Acta,2011(24):8861-8867. |
[69] | Wang, H.;Cui, L.-F.;Yang, Y.;Sanchez Casalongue, H.;Robinson, J.T.;Liang, Y.;Cui, Y.;Dai, H. .Mn_3O_4-graphene hybrid as a high-capacity anode material for lithium ion batteries[J].Journal of the American Chemical Society,2010(40):13978-13980. |
[70] | Park, MH;Kim, MG;Joo, J;Kim, K;Kim, J;Ahn, S;Cui, Y;Cho, J .Silicon Nanotube Battery Anodes[J].Nano letters,2009(11):3844-3847. |
[71] | Fang Ji;Ya-Li Li;Jian-Min Feng .Electrochemical performance of graphene nanosheets and ceramic composites as anodes for lithium batteries[J].Journal of Materials Chemistry: An Interdisciplinary Journal dealing with Synthesis, Structures, Properties and Applications of Materials, Particulary Those Associated with Advanced Technology,2009(47):9063-9067. |
[72] | Wang, J.-Z.;Zhong, C.;Chou, S.-L.;Liu, H.-K. .Flexible free-standing graphene-silicon composite film for lithium-ion batteries[J].Electrochemistry communications,2010(11):1467-1470. |
[73] | Chou, SL;Wang, JZ;Choucair, M;Liu, HK;Stride, JA;Dou, SX .Enhanced reversible lithium storage in a nanosize silicon/graphene composite[J].Electrochemistry communications,2010(2):303-306. |
[74] | Evanoff K;Magasinski A;Yang J et al.Nanosilicon-coated graphene granules as anodes for Li-ion batteries[J].Advancde Engineering Materials,2011,1(04):495. |
[75] | Xue, D.-J.;Xin, S.;Yan, Y.;Jiang, K.-C.;Yin, Y.-X.;Guo, Y.-G.;Wan, L.-J. .Improving the electrode performance of Ge through Ge@C core-shell nanoparticles and graphene networks[J].Journal of the American Chemical Society,2012(5):2512-2515. |
[76] | Ming Zhang;Danni Lei;Zhifeng Du .Fast synthesis of SnO2/graphene composites by reducing graphene oxide with stannous ions[J].Journal of Materials Chemistry: An Interdisciplinary Journal dealing with Synthesis, Structures, Properties and Applications of Materials, Particulary Those Associated with Advanced Technology,2011(6):1673-1676. |
[77] | Yao, J;Shen, XP;Wang, B;Liu, HK;Wang, GX .In situ chemical synthesis of SnO2-graphene nanocomposite as anode materials for lithium-ion batteries[J].Electrochemistry communications,2009(10):1849-1852. |
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