Influence of Sm3+ ion in structural, morphological, and electrochemical properties of LiMn2O4 synthesized by microwave calcination

Ionics - Tập 16 Số 4 - Trang 351-360 - 2010
S. Balaji1, Mutharasu Devarajan2, S. Shanmugan1, N. Sankara Subramanian1, K. Ramanathan1
1Materials Laboratory, Thiagarajar Advanced Research Centre, Thiagarajar College of Engineering, Tamil Nadu, India
2School of Physics, University Sains Malaysia, Penang, Malaysia

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Gadjov H, Gorova M, Kotzev V, Avdeev G, Uzunova S, Kovacheva D (2004) LiMn2O4 prepared by different methods at identical thermal treatment conditions: structural, morphological and electrochemical characteristics. J Power Sources 134:110–117

Xia Y, Zhou Y, Yoshio M (1997) Capacity fading on cycling of 4 V Li/LiMn2O4cells. J Electrochem Soc 144:2593–2599

Banov B, Todorov Y, Trifonova A, Momchilov A, Manev V (1997) LiMn2–xCoxO4 cathode with enhanced cycleability. J Power Sources 68:578–581

Guohua L, Ikuta H, Uchida T, Wakihara M (1996) The spinel phases LiMyMn2–yO4(M = Co, Cr, Ni) as the cathode for rechargeable lithium batteries. J Electrochem Soc 143:178–184

Molenda J, Marzec J, Wierczek KS, Ojczyk W, Ziemnicki M, Wilk P, Molenda M, Drozdek M, Dziembaj R (2004) The effect of 3d substitutions in the manganese sublattice on the charge transport mechanism and electrochemical properties of manganese spinel. Solid State Ionics 171:215–227

Capsoni D, Bini M, Chiodell G, Massarotti V, Mustarell P, Linati L, Mozzati MC, Azzoni CB (2003) Jahn–Teller transition in Al3+ doped LiMn2O4 spinel. Solid State Commun 126:169–174

Singhal R, Das SR, Tomar MS, Ovideo O, Nieto S, Melgarejo RE, Katiyar RS (2007) Synthesis and characterization of Nd doped LiMn2O4 cathode for Li-ion rechargeable batteries. J Power Sources 164:857–861

Xie Y, Yang R, Yan L, Qi L, Dai K, He P (2007) Synthesis and electrochemical characterization of Li1.05RExCryMn2−x−yO4 spinel as cathode material for rechargeable Li-battery. J Power Sources 168:272–277

Feng C, Tang H, Zhang K, Sun J (2003) Synthesis and electrochemical characterization of nonstoichiometry spinel phase LixMn1.93Y0.02O4 for lithium ion battery applications. Mater Chem Phys 80:573–576

Peng Z-D, Hu G-R, Liu Y-X (2005) The influence on performance and structure of spinel LiMn2O4 for lithium-ion batteries by doping rare-earth Sm. J Cent South Univ Technol 12:22–32

Liu W, Kowal K, Farrington GC (1996) Electrochemical characteristics of spinel phase LiMn2O4-based cathode materials prepared by the Pechini process. J Electrochem Soc 143:3590–3600

Lu Y, Wei M, Wang Z, Evans DG, Duan X (2004) Characterization of structure and electrochemical properties of lithium manganese oxides for lithium secondary batteries hydrothermally synthesized from δ-KxMnO2. Electrochim Acta 49:2361–2367

Y-P Fu, Y-H Su, CH Lin (2004) Comparison of microwave-induced combustion and solid-state reaction for synthesis of LiMn2−xCrxO4 powders and their electrochemical properties, Solid State Ionics 166: 137–146

Ying J, Jiang C, Wan C (2004) Preparation and characterization of high-density spherical LiCoO2 cathode material for lithium ion batteries. J Power Sources 129:264–269

Ramesh PD, Bradon D (1999) Use of partially oxidized SiC particle bed for microwave sintering of low loss ceramics. Mater Sci Engg A 266:211–220

Arora P, Popov BN, White RE (1998) Electrochemical investigations of cobalt-doped LiMn2O4as cathode material for lithium-ion batteries. J Electrochem Soc 145:807–815

Kerr JA (2000) In: Lide DR (ed) CRC handbook of chemistry and physics, 81st edn. CRC Press, Boca Raton, pp 9–55

Iqbal MJ, Ahmad Z (2008) Electrical and dielectric properties of lithium manganate nanomaterials doped with rare-earth elements. J Power Sources 179:763–769

Research Services Branch NIMH & NINDS. ImageJ—Image processing and analysis in Java. Available via Web site: http://rsb.info.nih.gov/ij

Impoco G, Carrato S, Caccamo M, Tuminello L, Licitra G (2007) Quantitative analysis of cheese microstructure using SEM imagery, Communications to SIMAI Congress. 2:1827–9015

Santander N, Das SR, Majumder SB, Katiyar RS (2004) Process optimization and electrochemical properties of lithium manganate cathode for rechargeable batteries. Surf Coat Technol 177–178:60–64

Xia Y, Yoshio M (1996) An investigation of lithium ion insertion into spinel structure Li-Mn-O compounds. J Electrochem Soc 143:825–833

Liu HW, Zhang KL (2004) The synthesis and cycling behavior of LiErxMn2–xO4 for lithium-ion batteries. Mater Lett 58:3049–3051

Yang ST, Jia JH, Ding L, Zhang MC (2003) Studies of structure and cycleability of LiMn2O4 and LiNd0.01Mn1.99O4 as cathode for Li-ion batteries. Electrochim Acta 48:569–573

Doyle M, Fuller TF, Newman J (1993) Modeling of galvanostatic charge and discharge of the lithium/polymer/insertion cell. J Electrochem Soc 140:1526–1533

Doyle M, Newman J, Gozdz AS, Schmutz CN, Tarascon JM (1996) Comparison of modeling predictions with experimental data from plastic lithium ion cells. J Electrochem Soc 143:1890–1903

Fuller TF, Doyle M, Newman J (1994) Simulation and optimization of the dual lithium ion insertion cell. J Electrochem Soc 141:1–10

Stephenson DE, Hartman EM, Harb JN, Wheeler DR (2007) Modeling of particle-particle interactions in porous cathodes for lithium-ion batteries. J Electrochem Soc 154:A1146–A1155