strongly correlated electron materials
Recently Published Documents


TOTAL DOCUMENTS

19
(FIVE YEARS 3)

H-INDEX

5
(FIVE YEARS 0)

2021 ◽  
Vol 12 (1) ◽  
Author(s):  
C. A. Marques ◽  
M. S. Bahramy ◽  
C. Trainer ◽  
I. Marković ◽  
M. D. Watson ◽  
...  

AbstractQuasiparticle interference (QPI) imaging is well established to study the low-energy electronic structure in strongly correlated electron materials with unrivalled energy resolution. Yet, being a surface-sensitive technique, the interpretation of QPI only works well for anisotropic materials, where the dispersion in the direction perpendicular to the surface can be neglected and the quasiparticle interference is dominated by a quasi-2D electronic structure. Here, we explore QPI imaging of galena, a material with an electronic structure that does not exhibit pronounced anisotropy. We find that the quasiparticle interference signal is dominated by scattering vectors which are parallel to the surface plane however originate from bias-dependent cuts of the 3D electronic structure. We develop a formalism for the theoretical description of the QPI signal and demonstrate how this quasiparticle tomography can be used to obtain information about the 3D electronic structure and orbital character of the bands.


2021 ◽  
Vol 12 (1) ◽  
Author(s):  
Carina A. Belvin ◽  
Edoardo Baldini ◽  
Ilkem Ozge Ozel ◽  
Dan Mao ◽  
Hoi Chun Po ◽  
...  

AbstractCollective excitations of bound electron-hole pairs—known as excitons—are ubiquitous in condensed matter, emerging in systems as diverse as band semiconductors, molecular crystals, and proteins. Recently, their existence in strongly correlated electron materials has attracted increasing interest due to the excitons’ unique coupling to spin and orbital degrees of freedom. The non-equilibrium driving of such dressed quasiparticles offers a promising platform for realizing unconventional many-body phenomena and phases beyond thermodynamic equilibrium. Here, we achieve this in the van der Waals correlated insulator NiPS3 by photoexciting its newly discovered spin–orbit-entangled excitons that arise from Zhang-Rice states. By monitoring the time evolution of the terahertz conductivity, we observe the coexistence of itinerant carriers produced by exciton dissociation and a long-wavelength antiferromagnetic magnon that coherently precesses in time. These results demonstrate the emergence of a transient metallic state that preserves long-range antiferromagnetism, a phase that cannot be reached by simply tuning the temperature. More broadly, our findings open an avenue toward the exciton-mediated optical manipulation of magnetism.


Science ◽  
2018 ◽  
Vol 361 (6400) ◽  
pp. 348-354 ◽  
Author(s):  
Paul R. C. Kent ◽  
Gabriel Kotliar

Correlated electron materials display a rich variety of notable properties ranging from unconventional superconductivity to metal-insulator transitions. These properties are of interest from the point of view of applications but are hard to treat theoretically, as they result from multiple competing energy scales. Although possible in more weakly correlated materials, theoretical design and spectroscopy of strongly correlated electron materials have been a difficult challenge for many years. By treating all the relevant energy scales with sufficient accuracy, complementary advances in Green’s functions and quantum Monte Carlo methods open a path to first-principles computational property predictions in this class of materials.


2018 ◽  
Vol 20 (3) ◽  
pp. 1321-1331 ◽  
Author(s):  
Masayuki Suda ◽  
Hiroshi M. Yamamoto

In this perspective, our recent progress in the development of novel SC organic FETs was reviewed, in which organic strongly correlated electron materials were utilised as channel materials.


2012 ◽  
Vol 30 ◽  
pp. 178-181
Author(s):  
Vyacheslav G. Storchak ◽  
Oleg E. Parfenov ◽  
Jess H. Brewer ◽  
Dmitry G. Eshchenko ◽  
Roger L. Lichti ◽  
...  

2011 ◽  
Vol 2 (Supplement A) ◽  
pp. A31-A37
Author(s):  
Georgios Papavassiliou ◽  
D. Argyriou ◽  
Nikos Panopoulos ◽  
Dimitris Koumoulis ◽  
Nikos Boukos ◽  
...  

Sign in / Sign up

Export Citation Format

Share Document