TY - JOUR
T1 - Quasi-one-dimensional spin dynamics in LiV 2O 4
T2 - One-to-three-dimensional crossover as a possible origin of heavy fermion state
AU - Kadono, Ryosuke
AU - Koda, Akihiro
AU - Higemoto, Wataru
AU - Ohishi, Kazuki
AU - Ueda, Hiroaki
AU - Urano, Chiharu
AU - Kondo, Shin Ichiro
AU - Nohara, Minoru
AU - Takagi, Hidenori
PY - 2012/1
Y1 - 2012/1
N2 - Spin fluctuation in LiV 2O 4 is revisited by examining the earlier result of muon spin rotation/relaxation measurement. Instead of the relationship for the localized electron limit, that between muon depolarization rate and spin fluctuation rate (ν D) for itinerant electron systems is used to reanalyze data, which reveals that ν D varies linearly with temperature (ν D α T) over a range 10 8-10 12 s -1 for 0:02 ≤ T < 10 2 K. Such a linear T behavior as well as the magnitude of ν D is fully consistent with the behavior of magnetic relaxation rate previously observed by inelastic neutron scattering (INS), demonstrating that μSR and INS have a common time window over a fluctuation spectrum. The linear T dependence of ν D is understood as a specific feature predicted by a Hubbard model for intersecting one-dimensional (1D) chains. This quasi-1D character, which is coexistent with enhanced uniform susceptibility at low temperatures, supports the scenario of 1D-to-3D crossover for the microscopic origin of heavy-fermion behavior in LiV 2O 4.
AB - Spin fluctuation in LiV 2O 4 is revisited by examining the earlier result of muon spin rotation/relaxation measurement. Instead of the relationship for the localized electron limit, that between muon depolarization rate and spin fluctuation rate (ν D) for itinerant electron systems is used to reanalyze data, which reveals that ν D varies linearly with temperature (ν D α T) over a range 10 8-10 12 s -1 for 0:02 ≤ T < 10 2 K. Such a linear T behavior as well as the magnitude of ν D is fully consistent with the behavior of magnetic relaxation rate previously observed by inelastic neutron scattering (INS), demonstrating that μSR and INS have a common time window over a fluctuation spectrum. The linear T dependence of ν D is understood as a specific feature predicted by a Hubbard model for intersecting one-dimensional (1D) chains. This quasi-1D character, which is coexistent with enhanced uniform susceptibility at low temperatures, supports the scenario of 1D-to-3D crossover for the microscopic origin of heavy-fermion behavior in LiV 2O 4.
KW - Geometrical frustration
KW - Heavy fermion
KW - Intersecting Hubbard chains
KW - Muon spin rotation
KW - Quasi-1D spin dynamics
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U2 - 10.1143/JPSJ.81.014709
DO - 10.1143/JPSJ.81.014709
M3 - Article
AN - SCOPUS:84855257067
SN - 0031-9015
VL - 81
JO - journal of the physical society of japan
JF - journal of the physical society of japan
IS - 1
M1 - 014709
ER -