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High Performance Full Sodium-Ion Cell Based on a Nanostructured Transition Metal Oxide as Negative Electrode.
López, María C; Aragón, María J; Ortiz, Gregorio F; Lavela, Pedro; Alcántara, Ricardo; Tirado, José L.
Affiliation
  • López MC; Inorganic Chemistry Laboratory, University of Cordoba, Campus of Rabanales, Marie Curie Building, Cordoba 14071 (Spain).
  • Aragón MJ; Inorganic Chemistry Laboratory, University of Cordoba, Campus of Rabanales, Marie Curie Building, Cordoba 14071 (Spain).
  • Ortiz GF; Inorganic Chemistry Laboratory, University of Cordoba, Campus of Rabanales, Marie Curie Building, Cordoba 14071 (Spain).
  • Lavela P; Inorganic Chemistry Laboratory, University of Cordoba, Campus of Rabanales, Marie Curie Building, Cordoba 14071 (Spain). iq1Lacap@uco.es.
  • Alcántara R; Inorganic Chemistry Laboratory, University of Cordoba, Campus of Rabanales, Marie Curie Building, Cordoba 14071 (Spain).
  • Tirado JL; Inorganic Chemistry Laboratory, University of Cordoba, Campus of Rabanales, Marie Curie Building, Cordoba 14071 (Spain).
Chemistry ; 21(42): 14879-85, 2015 Oct 12.
Article in En | MEDLINE | ID: mdl-26305272
A novel design of a sodium-ion cell is proposed based on the use of nanocrystalline thin films composed of transition metal oxides. X-ray diffraction, Raman spectroscopy and electron microscopy were helpful techniques to unveil the microstructural properties of the pristine nanostructured electrodes. Thus, Raman spectroscopy revealed the presence of amorphous NiO, α-Fe2 O3 (hematite) and γ-Fe2 O3 (maghemite). Also, this technique allowed the calculation of an average particle size of 23.4 Å in the amorphous carbon phase in situ generated on the positive electrode. The full sodium-ion cell performed with a reversible capacity of 100 mA h g(-1) at C/2 with an output voltage of about 1.8 V, corresponding to a specific energy density of about 180 W h kg(-1) . These promising electrochemical performances allow these transition metal thin films obtained by electrochemical deposition to be envisaged as serious competitors for future negative electrodes in sodium-ion batteries.
Key words

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Chemistry Journal subject: QUIMICA Year: 2015 Document type: Article Country of publication: Alemania

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Chemistry Journal subject: QUIMICA Year: 2015 Document type: Article Country of publication: Alemania