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Effect of high cobalt concentration on hopping motion in cobalt manganese spinel oxide (CoxMn3–xO4,x≥ 2.3)

Authors :
Han Chan Lee
Sungwook Mhin
Jae Seok Lee
Jacob L. Jones
Jiun Lim
Jeong Ho Ryu
Kang Min Kim
Sophie Guillemet-Fritsch
HyukSu Han
National Institute for Advanced Industrial Science and Technology - AIST (JAPAN)
Centre National de la Recherche Scientifique - CNRS (FRANCE)
Institut National Polytechnique de Toulouse - INPT (FRANCE)
North Carolina State University (USA)
Université Toulouse III - Paul Sabatier - UT3 (FRANCE)
University of Florida (USA)
Ajou University (KOREA)
Korea Institute of Industrial Technology - KITECH (KOREA)
Korea National University of Transportation - KNUT (KOREA)
Centre Interuniversitaire de Recherche et d'Ingénierie des Matériaux - CIRIMAT (Toulouse, France)
Institut National Polytechnique de Toulouse - Toulouse INP (FRANCE)
Korea Institute of Industrial Technology
University of Florida [Gainesville] (UF)
Korea National University of Transportation (KNUT)
National Institute of Advanced Industrial Science and Technology (AIST)
North Carolina State University [Raleigh] (NC State)
University of North Carolina System (UNC)
Ajou University
Centre interuniversitaire de recherche et d'ingenierie des matériaux (CIRIMAT)
Centre National de la Recherche Scientifique (CNRS)-Université Toulouse III - Paul Sabatier (UT3)
Université Fédérale Toulouse Midi-Pyrénées-Université Fédérale Toulouse Midi-Pyrénées-Institut National Polytechnique (Toulouse) (Toulouse INP)
Université Fédérale Toulouse Midi-Pyrénées-Institut de Chimie du CNRS (INC)
Source :
Journal of Physical Chemistry C, Journal of Physical Chemistry C, American Chemical Society, 2016, 120 (25), pp.13667-13674. ⟨10.1021/acs.jpcc.6b01440⟩
Publication Year :
2016
Publisher :
American Chemical Society, 2016.

Abstract

International audience; Hopping motions in cobalt manganese spinel oxides with high cobalt concentration (CoxMn3−xO4, 2.3 ≤ x ≤ 2.7) are investigated in order to clarify the origin of unusual electrical behaviors as negative temperature coefficient (NTC) thermistors. Based on the resistance versus temperature (R−T) characteristics, hopping conduction mechanisms in MCO compounds (x = 2.3 and 2.5) are attributed to variable range hopping (VRH) motion with a parabolic distribution of the density of states (DOS) near the Fermi level. However, when Co content increases up to 2.7, transition in the hopping motion occurs from VRH to the nearest neighboring hopping (NNH) motion, which can be responsible for a huge increase of the resistance accompanied by decrease of the factor of thermal sensitivity (B value) in MCO compounds (x = 2.7). Also, hopping distance and activation energies for MCO (x = 2.3 and 2.5) compounds following VRH conduction are calculated as a function of temperature, indicating that higher B value observed in MCO (x = 2.5) compound is due to the larger hopping distance compared to that of MCO (x = 2.3) compound.

Details

Language :
English
ISSN :
19327447 and 19327455
Database :
OpenAIRE
Journal :
Journal of Physical Chemistry C
Accession number :
edsair.doi.dedup.....6fd33c74045721492a5bb9de5e70c91f