MAGNON BOUND STATES IN ANISOTROPIC LINEAR CHAINS

被引:114
作者
TORRANCE, JB
TINKHAM, M
机构
[1] Division of Engineering and Applied Physics, Harvard University, Cambridge
[2] IBM Research Center, Yorktown Heights, NY
来源
PHYSICAL REVIEW | 1969年 / 187卷 / 02期
关键词
D O I
10.1103/PhysRev.187.587
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
The recent observation of two-, three-, four-, and five-magnon bound states in the linear chains of CoCl2•2H2O has prompted a theoretical examination of such states in an anisotropic linear ferromagnetic chain with S=12. A new method called the Ising-basis-function (IBF) method is developed. This method treats the conventional, localized Ising wave functions as Wannier functions, from which a complete, orthonormal set of Bloch functions (IBF's) is formed. Using these IBF's as basis functions, we obtain the expression for the energy of the two-magnon bound state originally found by Orbach for general longitudinal exchange anisotropy. Furthermore, we can calculate the energy of the (n>2)-magnon bound states for the case of strong longitudinal anisotropy. The method is also applied to describe the effect of transverse exchange anisotropy. It is shown that this anisotropy causes an interaction between bound states, particularly important near zero field, and gives rise to a finite probability of exciting the bound states by photon absorption. The generalization of this method to treat bound states in two and three dimensions and for S>12 is also discussed. The method is simple and has a direct physical interpretation. As an example, a physical description of the two-magnon bound state in a general system is given. Since the IBF method automatically contains some of the magnon-magnon interactions in zero order, it should be useful in other problems where these interactions are important. © 1969 The American Physical Society.
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页码:587 / &
相关论文
共 28 条
[1]   Metal theory [J].
Bethe, H. .
ZEITSCHRIFT FUR PHYSIK, 1931, 71 (3-4) :205-226
[2]   On the Theory of the Exchange Problem and the Appearence of Retentive Ferromagnetic [J].
Bloch, F. .
ZEITSCHRIFT FUR PHYSIK, 1932, 74 (5-6) :295-335
[3]   On the theory of ferromagnetism [J].
Bloch, F. .
ZEITSCHRIFT FUR PHYSIK, 1930, 61 (3-4) :206-219
[4]   SPIN-WAVE-SPIN-WAVE SCATTERING IN A HEISENBERG FERROMAGNET [J].
BOYD, RG ;
CALLAWAY, J .
PHYSICAL REVIEW, 1965, 138 (6A) :1621-&
[5]   SPIN-CLUSTER RESONANCE IN COCL2.2H2O [J].
DATE, M ;
MOTOKAWA, M .
PHYSICAL REVIEW LETTERS, 1966, 16 (24) :1111-&
[6]   SPIN-CLUSTER RESONANCE IN ISING SPIN SYSTEM [J].
DATE, M ;
MOTOKAWA, M .
JOURNAL OF THE PHYSICAL SOCIETY OF JAPAN, 1968, 24 (01) :41-&
[7]   MAGNON-MAGNON AND EXCITON-MAGNON INTERACTION EFFECTS ON ANTIFERROMAGNETIC SPECTRA [J].
ELLIOTT, RJ ;
THORPE, MF ;
IMBUSCH, GF ;
LOUDON, R ;
PARKINSON, JB .
PHYSICAL REVIEW LETTERS, 1968, 21 (03) :147-+
[8]   EVIDENCE FOR MAGNON-MAGNON INTERACTIONS IN RBMNF3 [J].
FLEURY, PA .
PHYSICAL REVIEW LETTERS, 1968, 21 (03) :151-&
[9]  
Friedman B, 1961, PRINCIPLES TECHNIQUE
[10]   BOUND STATES IN SPIN WAVE PROBLEM [J].
FUKUDA, N ;
WORTIS, M .
JOURNAL OF PHYSICS AND CHEMISTRY OF SOLIDS, 1963, 24 (12) :1675-&