Materials for energy storage and conversion based on metal oxides

被引:7
作者
Jin, Bo [1 ]
Yan, Qingguang [1 ]
Dou, Yanli [1 ]
机构
[1] Key Laboratory of Automobile Materials, Ministry of Education and School of Materials Science and Engineering, Jilin University
关键词
Dye sensitized solar cells; Energy storage and conversion; Lithium-ion batteries; Metal oxides; Supercapacitors;
D O I
10.2174/1874464811205030199
中图分类号
学科分类号
摘要
Metal oxides (MOs) have attracted extensive attention because they possess various applications such as lithium- ion batteries (LIBs), dye sensitized solar cells (DSSCs), fuel cells, catalysis, gas sensors, water splitting and supercapacitors due to low cost and high compatibility with the environment. This paper is a review on recent patents and scientific research literatures related to the synthesis, and energy storage and conversion of MOs in LIBs, DSSCs and supercapacitors. These MOs are mainly transition MOs such as Co3O4, CoO, Fe2O3, Fe3O4, Mn3O4 and MnO2. Some patents and scientific research literatures are also involved in MOs such as Cu2O, TiO2, NiO, SiO2, SnO, ZnO, SnO2, Zn2SnO4-SnO2 and ruthenium oxide. In addition, some problems existing with energy storage and conversion, and future research directions are also addressed. © 2012 Bentham Science Publishers.
引用
收藏
页码:199 / 212
页数:13
相关论文
共 66 条
[1]  
Li B.J., Cao H.Q., Shao J., Li G.Q., Qu M.Z., Yin G., Co<sub>3</sub>O<sub>4</sub>@graphene composites as anode materials for high-performance lithium ion batteries, Inorg Chem, 50, pp. 1628-1632, (2011)
[2]  
Sun Y., Feng X.Y., Chen C.H., Hollow Co<sub>3</sub>O<sub>4</sub> thin films as high performance anodes for lithium-ion batteries, J Power Sources, 196, pp. 784-787, (2011)
[3]  
Zhang P., Guo Z.P., Huang Y.D., Jia D.Z., Liu H.K., Synthesis of Co<sub>3</sub>O<sub>4</sub>/Carbon composite nanowires and their electrochemical properties, J Power Sources, 196, pp. 6987-6991, (2011)
[4]  
Nam K.T., Kim D.W., Yoo P.J., Chiang C.Y., Meethong N.L., Hammond P.T., Et al., Virus-enabled synthesis and assembly of nanowires for lithium ion battery electrodes, Science, 312, pp. 885-888, (2006)
[5]  
Grugeon S., Laruelle S., Dupont L., Tarascon J.-M., An update on the reactivity of nanoparticles Co-based compounds towards Li, Solid State Sci, 5, pp. 895-904, (2003)
[6]  
Do J.S., Weng C.H., Preparation and characterization of CoO used as anodic material of lithium battery, J Power Sources, 146, pp. 482-486, (2005)
[7]  
Xiang J.Y., Wang X.L., Xia X.H., Zhang L., Zhou Y., Shi S.J., Et al., Enhanced high rate properties of ordered porous Cu<sub>2</sub>O film as anode for lithium ion batteries, Electrochim Acta, 55, pp. 4921-4925, (2010)
[8]  
Xiang J.Y., Tu J.P., Yuan Y.F., Huang X.H., Zhou Y., Zhang L., Improved electrochemical performances of core-shell Cu<sub>2</sub>O/Cu composite prepared by a simple one-step method, Electrochem Commun, 11, pp. 262-265, (2009)
[9]  
Fu L.J., Gao J., Zhang T., Cao Q., Yang L.C., Wu Y.P., Et al., Preparation of Cu<sub>2</sub>O particles with different morphologies and their application in lithium ion batteries, J Power Sources, 174, pp. 1197-1200, (2007)
[10]  
Kuo C.H., Chen C.H., Huang M.H., Seed-mediated synthesis of monodispersed Cu<sub>2</sub>O nanocubes with five different size ranges from 40 to 420nm, Adv Funct Mater, 17, pp. 3773-3780, (2007)