Universal low-temperature magnetic properties of the classical and quantum dimerized ferromagnetic spin chain
arXiv:1204.4076 · doi:10.1103/PhysRevB.86.134407
Abstract
Low-temperature magnetic properties of both classical and quantum dimerized ferromagnetic spin chains are studied. It is shown that at low temperatures the classical dimerized model reduces to the classical uniform model with the effective exchange integral , where is the dimerization parameter. The partition function and spin correlation function are calculated by means of mapping to the continuum limit, which is justified at low temperatures. In the continuum limit the calculation of the partition function and spin correlation function is reduced to the eigenvalue problem of quantum rotator in gravitational field. Quantum model is studied using Dyson-Maleev representation of the spin operators. It is shown that in the long-wavelength limit the Hamiltonian of the quantum dimerized chain reduces to that of the uniform ferromagnetic chain with the effective exchange integral . This fact implies that the known equivalence of the low-temperature magnetic properties of classical and quantum ferromagnetic chains remains for the dimerized chains. The considered model can be generalized to include the next-neighbor antiferromagnetic interaction.
13 pages, 3 figures
References in corpus (5)
- Thermally activated Peierls dimerization in ferromagnetic spin chains
- The J1-J2 Heisenberg model at and close to its z=4 quantum critical point
- The dimerized ferromagnetic Heisenberg chain
- Low-temperature properties of classical zigzag spin chain at the ferromagnet-helimagnet transition point
- Low-temperature thermodynamics of the classical frustrated ferromagnetic chain in magnetic field
Cited by in corpus (4)
- Thermodynamics of frustrated ferromagnetic spin- Heisenberg chains: The role of inter-chain coupling
- Magnetic phase diagram of a spin S=1/2 antiferromagnetic two-leg ladder in the presence of modulated along legs Dzyaloshinskii-Moriya interaction
- Low-Temperature Properties of Ferromagnetic Spin Chains in a Magnetic Field
- Thermodynamics of Ferromagnetic Spin Chains in a Magnetic Field: Impact of the Spin-Wave Interaction