Structurally Restricted Phase Transitions in VO2(B) and Their Impact on Transport Properties
Author(s) -
Srinivasa R. Popuri,
Alla Artemenko,
R. Decourt,
Michaël Josse,
UChan Chung,
Dominique Michau,
Mario Maglione,
Antoine Villesuzanne,
M. Pollet
Publication year - 2015
Publication title -
the journal of physical chemistry c
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.401
H-Index - 289
eISSN - 1932-7455
pISSN - 1932-7447
DOI - 10.1021/acs.jpcc.5b07826
Subject(s) - spark plasma sintering , phase (matter) , condensed matter physics , materials science , atmospheric temperature range , phase transition , chemical physics , sintering , chemistry , thermodynamics , physics , organic chemistry , composite material
International audienceDespite the relatively simple composition and numerous applications of layered VO2(B), several issues such as effect of electron correlations and the nature of its metal–insulator transition remain unresolved due to the low irreversible phase transition temperature. We have overcome this challenge by using spark plasma sintering and reporting its reliable electronic transport properties. All our transport, magnetic and thermal data, converge in favor of an interesting multiphase nature of VO2(B): low temperature phase (insulating and magnetically ordered), an intermediate temperature phase (insulating), and a high temperature phase (presumably metallic with strong electron correlations) coexist. The coexistence domain for these three phases is broad and extends over about 60 K around 235 K. The low temperature phase with spin singlets is always associated with, at least one another phase and becomes dominant below 200 K. The high temperature phase is present over the full temperature range and exists alone above room temperature. We believe that our results will give considerable insight into understand this complex VO2(B) material and widen up its future applications
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