Spin-flop transition in uniaxial antiferromagnets:: Magnetic phases, reorientation effects, and multidomain states

被引:99
作者
Bogdanov, A. N.
Zhuravlev, A. V.
Roessler, U. K.
机构
[1] IFW Dresden, D-01171 Dresden, Germany
[2] Donetsk Inst Phys & Technol, UA-340114 Donetsk, Ukraine
关键词
D O I
10.1103/PhysRevB.75.094425
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The classical spin flop is the field-driven first-order reorientation transition in easy-axis antiferromagnets. A comprehensive phenomenological theory of easy-axis antiferromagnets displaying spin flops is developed. It is shown how the hierarchy of magnetic coupling strengths in these antiferromagnets causes a strongly pronounced two-scale character in their magnetic phase structure. In contrast to the major part of the magnetic phase diagram, these antiferromagnets near the spin-flop region are described by an effective model akin to uniaxial ferromagnets. For a consistent theoretical description both higher-order anisotropy contributions and dipolar stray fields have to be taken into account near the spin flop. In particular, thermodynamically stable multidomain states exist in the spin-flop region, owing to the phase coexistence at this first-order transition. For this region, equilibrium spin configurations and parameters of the multidomain states are derived as functions of the external magnetic field. The components of the magnetic susceptibility tensor are calculated for homogeneous and multidomain states in the vicinity of the spin flop. The appreciable anomalies in these measurable quantities provide an efficient method to investigate magnetic states and to determine materials parameters in bulk and confined antiferromagnets, as well as in nanoscale synthetic antiferromagnets. The method is demonstrated for experimental data on the magnetic properties near the spin-flop region in the orthorhombic layered antiferromagnet (C2H5NH3)(2)CuCl4.
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页数:13
相关论文
共 87 条
[1]   STRESS-INDUCED SPIN FLOP IN CR2O3 [J].
ALLEN, JW .
PHYSICAL REVIEW B, 1973, 7 (11) :4915-4931
[2]   STATISTICAL MECHANICS + FIELD-INDUCED PHASE TRANSITIONS OF HEISENBERG ANTIFERROMAGNET [J].
ANDERSON, FB ;
CALLEN, HB .
PHYSICAL REVIEW A-GENERAL PHYSICS, 1964, 136 (4A) :1068-&
[3]  
Bañobre-López M, 2003, NANOTECHNOLOGY, V14, P318, DOI 10.1088/0957-4484/14/2/342
[4]  
BARYAKHT.VG, 1969, JETP LETT-USSR, V9, P391
[5]   PHYSICS OF MAGNETIC DOMAINS [J].
BARYAKHTAR, VG ;
BOGDANOV, AN ;
YABLONSKII, DA .
USPEKHI FIZICHESKIKH NAUK, 1988, 156 (01) :47-92
[6]  
BARYAKHTAR VG, 1984, FIZ TVERD TELA+, V26, P389
[7]  
BARYAKHTAR VG, 1986, UKR FIZ ZH, V31, P266
[8]  
BARYAKHTAR VG, 1979, SOV PHYS JETP, V30, P619
[9]   MAGNETIC PHASE-DIAGRAM OF NICL2.4H2O [J].
BECERRA, CC ;
OLIVEIRA, NF ;
PADUANFILHO, A ;
FIGUEIREDO, W ;
SOUZA, MVP .
PHYSICAL REVIEW B, 1988, 38 (10) :6887-6893
[10]   ANTIFERROMAGNETISM AND MAGNETIC PHASE DIAGRAM OF GDALO3 [J].
BLAZEY, KW ;
ROHRER, H .
PHYSICAL REVIEW, 1968, 173 (02) :574-+