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Carbon Coated Fe<sub>3</sub>O<sub>4</sub> Nanospindles as a Superior Anode Material for Lithium‐Ion Batteries

Advanced Functional Materials · 2008 · Vol. 18(24) · pp. 3941–3946
Wei‐Ming ZhangXing‐Long WuJin‐Song HuYu‐Guo GuoLi‐Jun Wan

Abstract

Abstract Carbon‐coated Fe 3 O 4 nanospindles are synthesized by partial reduction of monodispersed hematite nanospindles with carbon coatings, and investigated with scanning electron microscopy, transmission electron microscopy, X‐ray diffraction, and electrochemical experiments. The Fe 3 O 4 C nanospindles show high reversible capacity (∼745 mA h g −1 at C/5 and ∼600 mA h g −1 at C/2), high coulombic efficiency in the first cycle, as well as significantly enhanced cycling performance and high rate capability compared with bare hematite spindles and commercial magnetite particles. The improvements can be attributed to the uniform and continuous carbon coating layers, which have several functions, including: i) maintaining the integrity of particles, ii) increasing the electronic conductivity of electrodes leading to the formation of uniform and thin solid electrolyte interphase (SEI) films on the surface, and iii) stabilizing the as‐formed SEI films. The results give clear evidence of the utility of carbon coatings to improve the electrochemical performance of nanostructured transition metal oxides as superior anode materials for lithium‐ion batteries.

Advancements in Battery MaterialsMagnetic Properties and Synthesis of FerritesSupercapacitor Materials and FabricationMaterials scienceFaraday efficiencyAnodeLithium (medication)ElectrochemistryCarbon fibersHematiteElectrolyteTransmission electron microscopyChemical engineering
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References
Nanocrystallinity effects in lithium battery materials
Physical Chemistry Chemical Physics · 2003 · 699 citations
Colloidal Carbon Spheres and Their Core/Shell Structures with Noble‐Metal Nanoparticles
Angewandte Chemie International Edition · 2004 · 2,177 citations
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