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seminar Date  
Date & Time Mar. 2nd (Thu), 4:00 p.m 
Venue #1323(E6-2. 1st fl.) 
Speaker Dr. Jonathan Denlinger, Lawrence Berkeley National Lab 

“Progress in the comparison of ARPES to DMFT for d and f strongly correlated electron systems”

 

 Dr. Jonathan Denlinger, Lawrence Berkeley National Lab

 Mar. 2nd (Thu), 4:00 p.m , #1323(E6-2. 1st fl.)

 

The comparison of angle-resolved photoemission (ARPES) to dynamical mean field theory (DMFT) electronic structure calculations is reviewed for three correlated electron systems of V2O3, CeCoIn5 and SmB6. The electronic structure of metallic phase V2O3, key to understanding its various metal-insulator transitions with temperature, doping and pressure, is revealed by ARPES to have a d-orbital band filling that is inconsistent with a 2007 DMFT model of correlation-enhanced orbital polarization, but is thematically consistent with more recent DMFT calculations stressing full charge-self-consistency.

   The Kondo lattice system CeCoIn5 is shown to exhibit itinerant f-electron participation in the localized-like 3D Fermi surface topology consistent with the low energy scale description of DMFT calculations, and with a temperature-dependence that extends far above the transport coherence temperature of T*~45K. 

   Finally, the temperature-dependent evolution of the bulk 4f electronic structure of mixed-valent SmB6 revealed by ARPES and DMFT identifies an important role in f-p hybridization assistance to the metal-insulator transition (MIT) beyond the minimal two-band models of f-d hybridization.  The current status of the topological insulator scenario for the SmB6 in-gap surface states is also reviewed.

 

Contact: Yeong Kwan Kim (Tel. 2516, yeongkwan@kaist.ac.kr)

번호 seminar Date Venue 제목
공지     Spring 2019: Physics Seminar Serises
공지     Spring 2019: Physics Colloquium
공지   Seminar Room #1323  Fall 2017: Physics Seminar Serises
공지   Seminar Room 1501  Fall 2017: Physics Colloquium
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200     Shift Charge and Spin Photocurrents in Dirac Surface States of Topological Insulator
199     Dynamical Resonance between Two Optical Cavities via Optomechanical Oscillator
198     Symmetry Protected Kondo Metals and Their Phase Transitions
197     Harmonic oscillator physics with single atoms in a state-selective optical potential
196     Non-equilibrium many-body spin dynamics in diamond
195     Realizing Haldane Model in Fe-based Honeycomb Ferromagnetic Insulators
194     Low Dimensional Active Plasmonics and Electron Optics in Graphene
193     Dirac fermions in condensed matters
192     Bandgap Engineering of Black Phosphorus
191     Quantum information experiments using few electron spins in semiconductors
190     Exotic phenomena at oxide LaAlO3/SrTiO3 hetero-interface and their applications
189     Time scale dependent dynamics in InAs/InP quantum dot gain media
188     Terahertz Metal Optics
187     Search for dark sector particles in the B-factory experiments
186     IMS and examples of the studies on optoelectronic materials
185     “Hybrid quantum systems with mechanical oscillators”
184     "Visualization of oxygen vacancy in motion and the interplay with electronic conduction"
183     “Tilt engineering of 4d and 5d transition metal oxides?”
182     “Symmetry and topology in transition metal dichalcogenide?”