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Ummethum, Jörg: Calculation of static and dynamical properties of giant magnetic molecules using DMRG. 2012
Inhalt
Introduction
Theoretical background: Magnetic molecules and spin Hamiltonians
Introduction
Spin Hamiltonian of magnetic molecules
Classical spin systems, bipartiteness, and geometrical frustration
Basis and good quantum numbers
Spectra of antiferromagnetic spin Hamiltonians
Typical observables and experimental techniques
Magnetization
Inelastic neutron scattering (INS)
The density matrix renormalization group (DMRG)
Introduction
Basis truncation
Real-space NRG truncation
DMRG truncation
Algorithms
Infinite-system algorithm
Finite-system algorithm
Implementation and technical details
Operators, states, and quantum numbers
Detailed description of the basic DMRG steps
Superblock diagonalization: Lanczos procedure and matrix-vector product
Calculation of expectation values
Target state transformation
Connection to matrix product states
General spin lattices
Dynamical DMRG
Basic properties of the algorithm and tests
Haldane gap
Ground state energy of the infinite s=1/2 chain
Convergence and reduced density matrix spectra
Comparison with exact diagonalization and ALPS DMRG: The icosidodecahedron
Test of the DDMRG implementation
The antiferromagnetic Heisenberg icosidodecahedron
Introduction
Properties of systems with corner-sharing triangles
Classical limit and the rotational band approximation
DMRG results
Numbering of the spins
Lowest energy eigenvalues and magnetization curves
Estimation of the accuracy and comparison with CPS and previous DMRG results
Dynamical correlation function for the s=1/2 icosidodecahedron
Antiferromagnetic spin rings
Introduction
Spin model for antiferromagnetic spin rings
Rotational band approximation and spin-wave theory
DMRG calculations for uniform antiferromagnetic Heisenberg rings
Accuracy of the rotational band approximation for spin rings
Calculation of the low-energy spectrum using standard and dynamical DMRG
Additional excitations
Dynamical correlation function for an excited reference state (S=2 excitations)
Fe18
Experimental results
Simulation of the high-energy INS data
Influence of the uniaxial anisotropy
Magnetization curves
Summary and conclusion
Appendix
Supplement to chapter 2
Supplement to chapter 5
Bibliography
Danksagung