Metal-insulator transitions in the periodic Anderson model
We solve the periodic Anderson model in the Mott-Hubbard regime, using dynamical mean field theory. Upon electron doping of the Mott insulator, a metal-insulator transition occurs which is qualitatively similar to that of the single band Hubbard model, namely, with a divergent effective mass and a f...
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2007
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| Acceso en línea: | https://bibliotecadigital.exactas.uba.ar/collection/paper/document/paper_00319007_v99_n19_p_Sordi http://hdl.handle.net/20.500.12110/paper_00319007_v99_n19_p_Sordi |
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paper:paper_00319007_v99_n19_p_Sordi2025-07-30T17:39:42Z Metal-insulator transitions in the periodic Anderson model Rozenberg, Marcelo Javier Doping (additives) Electrons Hubbard model Mean field theory Thermal effects Anderson model Mott insulator Mott-Hubbard regime High energy physics We solve the periodic Anderson model in the Mott-Hubbard regime, using dynamical mean field theory. Upon electron doping of the Mott insulator, a metal-insulator transition occurs which is qualitatively similar to that of the single band Hubbard model, namely, with a divergent effective mass and a first order character at finite temperatures. Surprisingly, upon hole doping, the metal-insulator transition is not first order and does not show a divergent mass. Thus, the transition scenario of the single band Hubbard model is not generic for the periodic Anderson model, even in the Mott-Hubbard regime. © 2007 The American Physical Society. Fil:Rozenberg, M.J. Universidad de Buenos Aires. Facultad de Ciencias Exactas y Naturales; Argentina. 2007 https://bibliotecadigital.exactas.uba.ar/collection/paper/document/paper_00319007_v99_n19_p_Sordi http://hdl.handle.net/20.500.12110/paper_00319007_v99_n19_p_Sordi |
| institution |
Universidad de Buenos Aires |
| institution_str |
I-28 |
| repository_str |
R-134 |
| collection |
Biblioteca Digital - Facultad de Ciencias Exactas y Naturales (UBA) |
| topic |
Doping (additives) Electrons Hubbard model Mean field theory Thermal effects Anderson model Mott insulator Mott-Hubbard regime High energy physics |
| spellingShingle |
Doping (additives) Electrons Hubbard model Mean field theory Thermal effects Anderson model Mott insulator Mott-Hubbard regime High energy physics Rozenberg, Marcelo Javier Metal-insulator transitions in the periodic Anderson model |
| topic_facet |
Doping (additives) Electrons Hubbard model Mean field theory Thermal effects Anderson model Mott insulator Mott-Hubbard regime High energy physics |
| description |
We solve the periodic Anderson model in the Mott-Hubbard regime, using dynamical mean field theory. Upon electron doping of the Mott insulator, a metal-insulator transition occurs which is qualitatively similar to that of the single band Hubbard model, namely, with a divergent effective mass and a first order character at finite temperatures. Surprisingly, upon hole doping, the metal-insulator transition is not first order and does not show a divergent mass. Thus, the transition scenario of the single band Hubbard model is not generic for the periodic Anderson model, even in the Mott-Hubbard regime. © 2007 The American Physical Society. |
| author |
Rozenberg, Marcelo Javier |
| author_facet |
Rozenberg, Marcelo Javier |
| author_sort |
Rozenberg, Marcelo Javier |
| title |
Metal-insulator transitions in the periodic Anderson model |
| title_short |
Metal-insulator transitions in the periodic Anderson model |
| title_full |
Metal-insulator transitions in the periodic Anderson model |
| title_fullStr |
Metal-insulator transitions in the periodic Anderson model |
| title_full_unstemmed |
Metal-insulator transitions in the periodic Anderson model |
| title_sort |
metal-insulator transitions in the periodic anderson model |
| publishDate |
2007 |
| url |
https://bibliotecadigital.exactas.uba.ar/collection/paper/document/paper_00319007_v99_n19_p_Sordi http://hdl.handle.net/20.500.12110/paper_00319007_v99_n19_p_Sordi |
| work_keys_str_mv |
AT rozenbergmarcelojavier metalinsulatortransitionsintheperiodicandersonmodel |
| _version_ |
1840326811290959872 |