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Date: 27-2-2021
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The spin Hamiltonian
The orbital states of a multielectron 3d ion are represented by the states |L,ML〉and the spin states by |S,MS〉 . Since the orbital moments are quenched by the crystal field, the effects of the crystal field and spin-orbit coupling on the magnetic energy levels of an ion are conveniently represented by an effective spin Hamiltonian based on the 2S + 1 |MS〉 sublevels of the ground state. The magnetic properties of the ion depend on the splitting of these levels in a magnetic field.
.......(1)
Following (1), the simplest spin Hamiltonian, used for sites with uniaxial symmetry, is
........(2)
An orthorhombic distortion adds a term E(S2x− S2y ). The next term in tetragonal symmetry is FS4z . Cubic symmetry gives a term Dc(S4x+ S4y+ S4z ). The splitting of the levels usually depends on the orientation of the applied field, which is reproduced by an anisotropic ˆg-tensor, so the Zeeman term is written as μB/¯h(B · ˆg · S) = (μB/¯h)Σi,j gijBiSj . The spin Hamiltonian approach is widely used in electron paramagnetic resonance, where the spectra are parameterized in terms of D, E, . . . , g||, g⊥. The ability to diagonalize large Hamiltonian matrices which include crystal-field, spin-orbit and Zeeman terms by computer has reduced the need for these approximation methods.
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