Zarenia M, Neilson D, Peeters F M
Department of Physics, University of Antwerp, Groenenborgerlaan 171, B-2020, Antwerpen, Belgium.
Dipartimenti di Fisica e di Farmacia, Università di Camerino, 62032, Camerino, Italy.
Sci Rep. 2017 Sep 14;7(1):11510. doi: 10.1038/s41598-017-11910-w.
Recently proposed accurate correlation energies are used to determine the phase diagram of strongly coupled electron-hole graphene bilayers. The control parameters of the phase diagram are the charge carrier density and the insulating barrier thickness separating the bilayers. In addition to the electron-hole superfluid phase we find two new inhomogeneous ground states, a one dimensional charge density wave phase and a coupled electron-hole Wigner crystal. The elementary crystal structure of bilayer graphene plays no role in generating these new quantum phases, which are completely determined by the electrons and holes interacting through the Coulomb interaction. The experimental parameters for the new phases lie within attainable ranges and therefore coupled electron-hole bilayer graphene presents itself as an experimental system where novel emergent many-body phases can be realized.
最近提出的精确相关能被用于确定强耦合电子 - 空穴双层石墨烯的相图。相图的控制参数是电荷载流子密度和分隔双层的绝缘势垒厚度。除了电子 - 空穴超流相,我们还发现了两种新的非均匀基态,一种一维电荷密度波相和一种耦合电子 - 空穴维格纳晶体。双层石墨烯的基本晶体结构在产生这些新的量子相过程中不起作用,这些量子相完全由通过库仑相互作用的电子和空穴决定。新相的实验参数处于可实现的范围内,因此耦合电子 - 空穴双层石墨烯展现为一个可以实现新型涌现多体相的实验系统。