Specific Features of Landau Level Mixing and the Electron Distribution Function under Conditions of the Quantum Hall Effect
- Autores: Van'kov A.B1,2
- 
							Afiliações: 
							- Institute of Solid State Physics, Russian Academy of Sciences
- National Research University Higher School of Economics
 
- Edição: Volume 117, Nº 5-6 (3) (2023)
- Páginas: 356-362
- Seção: Articles
- URL: https://rjdentistry.com/0370-274X/article/view/662529
- DOI: https://doi.org/10.31857/S1234567823050063
- EDN: https://elibrary.ru/PXGKMU
- ID: 662529
Citar
Texto integral
 Acesso aberto
		                                Acesso aberto Acesso está concedido
						Acesso está concedido Acesso é pago ou somente para assinantes
		                                							Acesso é pago ou somente para assinantes
		                                					Resumo
The electron distribution over Landau levels is calculated in the regime of the quantum Hall effect at strong Coulomb interaction. For this purpose, a modified scheme of exact diagonalization with a significantly reduced basis of many-particle configurations has been developed, which makes it possible to adequately take into account the mixing of states in several Landau levels. The behavior of the electron distribution function over Landau levels is studied as a function of the filling factor and the Wigner–Seitz radius rs. It is shown that the Landau quantization at a fixed electron density significantly suppresses the smearing of the electron distribution function as compared to the case of zero magnetic field. For example, for rs < 1 and low filling factors, the quasiparticle contribution to the Migdal jump 1 − Z in the distribution function is an approximately linear function of ν and a quadratic function of rs. Simultaneously, as ν decreases, the tails of the distribution function become longer. The mechanism of rearrangement of the distribution function in the regime of the quantum Hall effect is described in terms of the generation of magnetoplasmon fluctuations involved in the structure of the ground state of the system.
Sobre autores
A. Van'kov
Institute of Solid State Physics, Russian Academy of Sciences; National Research University Higher School of Economics
							Autor responsável pela correspondência
							Email: vankov@issp.ac.ru
				                					                																			                												                								142432, Chernogolovka, Moscow region, Russia; 101000, Moscow, Russia						
Bibliografia
- Л. Д. Ландау, ЖЭТФ 30, 1058 (1956).
- Л. Д. Ландау, ЖЭТФ 32, 59 (1957).
- А. Б. Мигдал, ЖЭТФ 32, 399 (1957).
- В. П. Силин, ЖЭТФ 34, 781 (1958).
- M. S. Hossain, M. K. Ma, K. A. Villegas Rosales, Y. J. Chung, L. N. Pfei er, K. W. West, K. W. Baldwin, and M. Shayegan, PNAS 117(51), 32244 (2020).
- J. Falson, I. Sodemann, B. Skinner, D. Tabrea, Y. Kozuka, A. Tsukazaki, M. Kawasaki, K. von Klitzing, and J. H. Smet, doi: 10.1038/s41563-021-01166-1.
- V. V. Solovyev and I. V. Kukushkin, Phys. Rev. B 96, 115131 (2017).
- И. В. Кукушкин, ЖЭТФ 162(10), 480 (2022).
- А. Б. Ваньков, И. В. Кукушкин, Письма в ЖЭТФ, 113(2), 112 (2021).
- C. Kallin and B. I. Halperin, Phys. Rev. B 30, 5655 (1984).
- В. Е. Бисти, А. Б. Ваньков, А. С. Журавлев, Л. В. Кулик, УФН 185(4), 337 (2015).
- V. M. Galitski and S. Das Sarma, Phys. Rev. B 70, 035111 (2004).
- G. Burkard, D. Loss, and E. V. Sukhorukov, Phys. Rev. B 61, R16303 (2000).
- N. D. Drummond and R. J. Needs, Phys. Rev. B 79, 085414 (2009).
- Yu. A. Bychkov and A. V. Kolesnikov, ZhETF 107, 1933 (1995).
- F. D. M. Haldane, Phys. Rev. Lett. 55, 2095 (1985).
- A. P. Smith, A. H. MacDonald, and G. Gumbs, Phys. Rev. B 45, 8829 (1992).
- A. H. MacDonald, J. Phys. C: Solid State Phys. 18, 1003 (1985).
- С. М. Дикман, В. М. Жилин, Д. В. Кулаковский, ЖЭТФ 128(11), 1025 (2005).
Arquivos suplementares
 
				
			 
						 
						 
					 
						 
						 
									

 
  
  
  Enviar artigo por via de e-mail
			Enviar artigo por via de e-mail 
