Nonperturbative methods in Quantum Mechanics of three or more particles
Augusto Gonzalez
Abstract
In the present report, a set of theoretical results obtained in the period from 1991 to 2005 are reviewed. The physical systems under study include quark models of hadrons, inert atom clusters, atomic traps, and electrons and excitons confined in quantum dots. They contain three or more particles, and are described by nonrelativistic Quantum Mechanics. In the smallest systems (6 particles or less), exact diagonalization complemented with the Lanczos algorithm, and some analytical approaches (1/D-expansion, improved semiclassical quantization, etc.) are used. In the larger systems (from 7 to hundreds of particles), we employ approximate methods, such as two-point Pade approximants, variational Monte Carlo estimations, Hartree - Fock and RPA schemes, BCS functions and the Bethe - Goldstone algorithm, etc. With the help of these methods, a variety of physical properties have been computed, i.e., energy spectra, particle densities, spin textures, light absorption and emission, inelastic light scattering, and some dynamical features.
Create a lesson
Related papers
Distinguishing Quantum Capacitance Signatures of a Topological Majorana Wire from a Normal Wire Segment
Binayyak Bhusan Roy, Jay Deep Sau, Sumanta Tewari
Band's Geometry Origin of Quantum Spin Transport Phenomena
Elena Derunova, Mazhar N. Ali
Trapping e/4 quasiparticles in bilayer graphene
Mario Di Luca, Emily Hajigeorgiou, Ning Ma et al.
Scalable, Simple, and Versatile Encapsulation of 2D Materials and Devices
Gabriel Natale, Uma Chirkova, Flávio Henriques Feres et al.
Mobility Enhancement in Si/SiGe Quantum Well Enabled by a Buried Si Layer Trapping Oxygen Impurities
Felix Reichmann, Alberto Mistroni, Fabian Fidorra et al.
Occupation-Driven Josephson Diode in a Symmetric Junction
Jianxiong Zhai, Zelei Zhang, Jiawei Yan