Anwendungen und Erweiterungen des Falicov-Kimball-Modells : CDW-Phasen und exzitonische Isolatorphasen im erweiterten FKM
File | Description | Size | Format | |
---|---|---|---|---|
E-Diss1105_doktorarbeit.pdf | 1.97 MB | Adobe PDF | View/Open |
Other Titles: | Applications and Extensions of the Falicov-Kimball Model : CDW-Phases and Excitonic Insulator Phases in the Extended Falicov-Kimball Model | Authors: | Schneider, Claudia | Supervisor: | Czycholl, Gerd ![]() |
1. Expert: | Czycholl, Gerd ![]() |
Experts: | Anders, F. B. | Abstract: | The Falicov-Kimball Model (FKM) is one of the simplest two-band models for correlated electrons in solid state theory. It describes itinerant c-electrons which interact with localized f-electrons by short-range Coulomb repulsion :i:U:/i:. Since its introduction in 1969 it has been used to study metal-insulator transitions, mixed-valence phenomena, crystallization etc. During the past few years the possibility of electronic ferroelectricity (EFE) has been suggested and controversely discussed.:p:This work extends the FKM by an f-f hopping :i:t:/i::sub:f:/sub:, giving the f-band a realistic finite bandwidth. Our aim is to study phase transitions and to create a ground state phase diagram in the weak-coupling limit. Using self-consistent Hartree-Fock calculations, we examine charge density waves (CDW) and electronic ferroelectricity (EFE) simultaneously.:p:As a result, we find a rich phase diagram for :i:t:/i::sub:f:/sub: and the f-level energy :i:E:/i::sub:f:/sub:. Near the symmetric case (:i:E:/i::sub:f:/sub:=0) the system builds a stable CDW phase with an insulating intraband gap in both c- and f-densities of states. For higher values of :i:E:/i::sub:f:/sub: it undergoes a first order phase transitionleading to an (anti-)ferroelectric phase depending on the sign of :i:t:/i::sub:f:/sub:. The intraband gap persists as an effective hybridization gap, giving rise to an interpretation as excitonic insulator phase. If one raises the f-level energy further the ferroelectronic phase vanishes and is replaced by a band insulator (for high values of :i:U:/i:) or, alternatively, by a semi-metal phase (for low values of :i:U:/i:). The (anti-)ferroelectric phase transition is of second order. No coexistence of CDW and excitonic insulator phases is found in the numerical Hartree-Fock treatment. |
Keywords: | extended Falicov-Kimball model; phase diagram; phase transitions; excitonic insulator; electronic ferroelectricity; charge density waves; BCS model | Issue Date: | 26-Nov-2004 | Type: | Dissertation | Secondary publication: | no | URN: | urn:nbn:de:gbv:46-diss000011053 | Institution: | Universität Bremen | Faculty: | Fachbereich 01: Physik/Elektrotechnik (FB 01) |
Appears in Collections: | Dissertationen |
Page view(s)
226
checked on Apr 3, 2025
Download(s)
57
checked on Apr 3, 2025
Google ScholarTM
Check
Items in Media are protected by copyright, with all rights reserved, unless otherwise indicated.