[1] Ding S J,Chen J S,Qi G G,Duan X N,Wang Z Y,Giannelis E P,Archer L A,Lou X W. Formation of SnO 2 hollow nanospheres inside mesoporous silica nanoreactors[J]. J. Am. Chem. Soc. ,2011,133(1):21-23. [2] Ning J,Jiang T,Men K,Dai Q,Li D,Wei Y,Liu B,Chen G,Zou B,Zou G. Syntheses characterizations and applications in lithium ion batteries of hierarchical SnO nanocrystals[J]. J. Phys. Chem. C ,2009,113(32):14140-14144. [3] Xu Y H,Liu Q,Zhu Y J,Liu Y H,Langrock A,Zachariah M R,Wang C S. Uniform nano-Sn/C composite anodes for lithium ion batteries[J]. Nano Lett. ,2013,13(2):470-474. [4] Wu P,Du N,Zhang H,Yu J X,Qi Y,Yang D R. Carbon-coated SnO 2 nanotubes:Template-engaged synthesis and their application in lithium-ion batteries[J]. Nanoscale ,2011,3(2):746-750. [5] Jin Y H,Min K M,Seo S D,Shim H W,Kim D W. Enhanced Li storage capacity in 3 nm diameter SnO 2 nanocrystals firmly anchored on multiwalled carbon nanotubes[J]. J. Phys. Chem. C ,2011,115(44):22062-22067. [6] Xu C,Sun J,Gao L. Direct growth of monodisperse SnO 2 nanorods on graphene as high capacity anode materials for lithium ion batteries[J]. J. Mater. Chem. ,2012,22:975-979. [7] Wu H B,Chen J S,Lou X W,Hng H H. Synthesis of SnO 2 hierarchical structures assembled from nanosheets and their lithium storage properties[J]. J. Phys. Chem. C ,2011,115(50):24605-24610. [8] Wang C,Zhou Y,Ge M,Xu X,Zhang Z,Jiang J Z. Large-scale synthesis of SnO 2 nanosheets with high lithium storage capacity[J]. J. Am. Chem. Soc. ,2009,132(1):46-47. [9] Wang Z,Luan D,Boey F Y,Lou X W. Fast formation of SnO 2 nanoboxes with enhanced lithium storage capability[J]. J. Am. Chem. Soc. ,2011,133(13):4738-4741. [10] Li Y,Zhu S,Liu Q,Gu J,Guo Z,Chen Z,Feng C,Zhang D,Moon W J. Carbon-coated SnO 2 @C with hierarchically porous structures and graphite layers inside for a high-performance lithium-ion battery[J]. J. Mater. Chem. ,2012,22:2766-2773. [11] Chen J S,Archer L A,Lou X W. SnO 2 hollow structures and TiO 2 nanosheets for lithium-ion batteries[J]. J. Mater. Chem. ,2011,21:9912-9924. [12] Wu H B,Chen J S,Hng H H,Lou W X. Nanostructured metal oxide-based materials as advanced anodes for lithium-ion batteries[J]. Nanoscale ,2012,4(8):2526-2542. [13] Wang H K,Rogach A L. Hierarchical SnO 2 nanostructures:Recent advances in design synthesis and applications[J]. Chem. Mater. ,2014,26(1):123-133. [14] Wang H K,Fu F,Zhang F,Wang H E,Kershaw S V,Xu J,Sun S G,Rogach A L. Hydrothermal synthesis of hierarchical SnO 2 microspheres for gas sensing and lithium-ion batteries applications:Fluoride-mediated formation of solid and hollow structures[J]. J. Mater. Chem. ,2012,22(5):2140-2148. [15] Wang H K,Wang Y,Xu J,Yang H,Lee C S,Rogach A L. Polyvinylpyrrolidone-assisted ultrasonic synthesis of SnO nanosheets and their use as conformal templates for tin dioxide nanostructures[J]. Langmuir ,2012,28(28):10597-10601. [16] Wang H K,Xi L,Tucek J,Zhan Y,Hung T F,Kershaw S V,Zboril R,Chung C Y,Rogach A L. Hierarchical assembly of Ti(Ⅳ)/Sn(Ⅱ) co-doped SnO 2 nanosheets along sacrificial titanate nanowires:Synthesis characterization and electrochemical properties[J]. Nanoscale ,2013,5(19):9101-9109. [17] Kim C,Noh M,Choi M,Cho J,Park B. Critical size of a nano SnO 2 electrode for Li-secondary battery[J]. Chem. Mater. ,2005,17(12):3297-3301. [18] Kravchyk K,Protesescu L,Bodnarchuk M,Krumeich F,Yarema M,Walter M,Guntlin C,Kovalenko M. Monodisperse and inorganically capped Sn and Sn/SnO 2 nanocrystals for high-performance Li-ion battery anodes[J]. J. Am. Chem. Soc. ,2013,135(11):4199-4202. [19] Li N,Du K,Liu G,Xie Y,Zhou G,Zhu J,Li F,Cheng H M. Effects of oxygen vacancies on the electrochemical performance of tin oxide[J]. J. Mater. Chem. A ,2013,1(5):1536-1539. [20] Huang Jiaqi(黄佳琦),Zhang Qiang(张强),Jin Yong(金涌),Wei Fei(魏飞). Nanocarbon materials for lithium ion battery applications[J]. Energy Storage Science and Technology (储能科学与技术),2012,1(1):1-12. [21] Zhang H X,Feng C,Zhai Y C,Jiang K L,Li Q Q,Fan S S. Cross-stacked carbon nanotube Sheets uniformly loaded with SnO 2 nanoparticles:A novel binder-free and high-capacity anode material for lithium-ion batteries[J]. Adv. Mater. ,2009,21(22):2299-2304. [22] Kim J C,Hwang I S,Seo S D,Lee G H,Shim H W,Park K S,Kim D W. Superior long-term cycling stability of SnO 2 nanoparticle/multiwalled carbon nanotube heterostructured electrodes for Li-ion rechargeable batteries[J]. Nanotechnology ,2012,23:465402. [23] Li J,Zhao Y,Wang N,Guan L. A high performance carrier for SnO 2 nanoparticles used in lithium ion battery[J]. Chem. Commun. ,2011,47(18):5238-5240. [24] Suzuki T,Hasegawa T,Mukai S R,Tamon H. A theoretical study on storage states of Li ions in carbon anodes of Li ion batteries using molecular orbital calculations[J]. Carbon ,2003,41(10):1933-1939. [25] Zhi Linjie(智林杰),Fang Yan(方岩),Kang Feiyu(康飞宇). Graphene based electrode materials for lithium-ion batteries:Energy storage properties and prospects[J]. New Carbon Materials (新型炭材料),2011,1(26):5-8. [26] Song H W,Li N,Cui H,Wang C X. Enhanced capability and cyclability of SnO 2 -graphene oxide hybrid anode by firmly anchored SnO 2 quantum dots[J]. J. Mater. Chem. A ,2013,1(26):7558-7562. [27] Ye F,Zhao B,Ran R,Shao Z. Facile mechanochemical synthesis of nano SnO 2 /graphene composite from coarse metallic Sn and graphite oxide:An outstanding anode material for lithium-ion batteries[J]. Chem. Eur. J. ,2014,20(14):4055-4063. [28] Chen X T,Wang K X,Zhai Y B,Zhang H J,Wu X Y,Wei X,Chen J S. A facile one-pot reduction method for the preparation of a SnO/SnO 2 /GNS composite for high performance lithium ion batteries[J]. Dalton Trans. ,2014,43(8):3137-3143. [29] Vinayan B P,Ramaprabhu S. Facile synthesis of SnO 2 nanoparticles dispersed nitrogen doped graphene anode material for ultrahigh capacity lithium ion battery applications[J]. J. Mater. Chem. A ,2013,1(12):3865-3871. [30] Zhou X,Wan L J,Guo Y G. Binding SnO 2 nanocrystals in nitrogen-doped graphene sheets as anode materials for lithium-ion batteries[J]. Adv. Mater. ,2013,25(15):2152-2157. [31] Wang R,Xu C,Sun J,Gao L,Yao H. Solvothermal-induced 3D macroscopic SnO 2 /nitrogen-doped graphene aerogels for high capacity and long-life lithium storage[J]. ACS Appl. Mat. Interfaces ,2014,6(5):3427-3436. [32] Wang X,Cao X,Bourgeois L,Guan H,Chen S,Zhong Y,Tang D M,Li H,Zhai T,Li L,Bando Y,Golberg D. N-doped graphene-SnO 2 sandwich paper for high-performance lithium-ion batteries[J]. Adv. Funct. Mater. ,2012,22(13):2682-2690. |