TY - JOUR
T1 - Phase evolution and critical behavior in strain-tuned LaMnO3 -SrMnO3 superlattices
AU - Yamada, Hiroyuki
AU - Xiang, Ping Hua
AU - Sawa, Akihito
PY - 2010/1/14
Y1 - 2010/1/14
N2 - Mott insulator superlattices, LaMnO3 -SrMnO3, grown on lattice-matched La0.3 Sr0.7 Al0.65 Ta0.35 O3 substrates were investigated as to the influence of the thicknesses of LaMnO3 (m unit cells [uc], 2≤m≤10) and SrMnO3 (n uc, 2≤n≤6) layers on the electronic and magnetic properties. The superlattices exhibited dramatic phase evolution and critical behavior when the structural imperfections were significantly diminished. Ground states of the superlattices were mostly ferromagnetic insulator (nonmetal), whereas typical ferromagnetic metal (FM) could be realized for m>n and n=2. For m=2, the antiferromagnetic insulator (AFI) was stabilized for n≥3 and an insulating state persisted even down to n=2. Around the metal-insulator boundary, the superlattices exhibited magnetorelaxorlike large magnetoresistance and in the case of m=n=2, a magnetic field induced an insulator-metal transition, which is unpredictable from La1-x Srx MnO3 bulk and alloy films. Detailed analyses of the magnetic field dependences of magnetization and resistivity for the superlattices indicated that the phase separation of FM and AFI may occur at the interface and the AFI state may change to the FM state by applying a magnetic field.
AB - Mott insulator superlattices, LaMnO3 -SrMnO3, grown on lattice-matched La0.3 Sr0.7 Al0.65 Ta0.35 O3 substrates were investigated as to the influence of the thicknesses of LaMnO3 (m unit cells [uc], 2≤m≤10) and SrMnO3 (n uc, 2≤n≤6) layers on the electronic and magnetic properties. The superlattices exhibited dramatic phase evolution and critical behavior when the structural imperfections were significantly diminished. Ground states of the superlattices were mostly ferromagnetic insulator (nonmetal), whereas typical ferromagnetic metal (FM) could be realized for m>n and n=2. For m=2, the antiferromagnetic insulator (AFI) was stabilized for n≥3 and an insulating state persisted even down to n=2. Around the metal-insulator boundary, the superlattices exhibited magnetorelaxorlike large magnetoresistance and in the case of m=n=2, a magnetic field induced an insulator-metal transition, which is unpredictable from La1-x Srx MnO3 bulk and alloy films. Detailed analyses of the magnetic field dependences of magnetization and resistivity for the superlattices indicated that the phase separation of FM and AFI may occur at the interface and the AFI state may change to the FM state by applying a magnetic field.
UR - https://www.scopus.com/pages/publications/77954767726
U2 - 10.1103/PhysRevB.81.014410
DO - 10.1103/PhysRevB.81.014410
M3 - 文章
AN - SCOPUS:77954767726
SN - 1098-0121
VL - 81
JO - Physical Review B - Condensed Matter and Materials Physics
JF - Physical Review B - Condensed Matter and Materials Physics
IS - 1
M1 - 014410
ER -