| Literature DB >> 28706067 |
R Krishna Kumar1,2,3, X Chen2, G H Auton2, A Mishchenko1, D A Bandurin1, S V Morozov4,5, Y Cao2, E Khestanova1, M Ben Shalom1, A V Kretinin2,6, K S Novoselov2, L Eaves2,7, I V Grigorieva1, L A Ponomarenko3, V I Fal'ko8,2, A K Geim8,2.
Abstract
Cyclotron motion of charge carriers in metals and semiconductors leads to Landau quantization and magneto-oscillatory behavior in their properties. Cryogenic temperatures are usually required to observe these oscillations. We show that graphene superlattices support a different type of quantum oscillation that does not rely on Landau quantization. The oscillations are extremely robust and persist well above room temperature in magnetic fields of only a few tesla. We attribute this phenomenon to repetitive changes in the electronic structure of superlattices such that charge carriers experience effectively no magnetic field at simple fractions of the flux quantum per superlattice unit cell. Our work hints at unexplored physics in Hofstadter butterfly systems at high temperatures.Entities:
Year: 2017 PMID: 28706067 DOI: 10.1126/science.aal3357
Source DB: PubMed Journal: Science ISSN: 0036-8075 Impact factor: 47.728