Effect of quasiparticle excitations and exchange-correlation in Coulomb drag in graphene

被引:0
作者
Rajveer Fandan
Jorge Pedrós
Francisco Guinea
Alberto Boscá
Fernando Calle
机构
[1] Universidad Politécnica de Madrid,Instituto de Sistemas Optoelectrónicos y Microtecnología
[2] Universidad Politécnica de Madrid,Departamento de Ingeniería Electrónica, E.T.S.I de Telecomunicación
[3] IMDEA-Nanociencia,School of Physics and Astronomy
[4] University of Manchester,undefined
来源
Communications Physics | / 2卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Coulomb drag in double layer graphene systems separated by an h-BN interlayer allows probing of the electron-electron interactions in the effective limit of zero layer separation. Although these interactions can be influenced by plasmons, phonons and exchange and correlation effects, these excitations have never been studied altogether, missing the effects of their coupling on the drag physics. Here we study theoretically the effects of these quasiparticles and their coupling, including also the effects of the electronic exchange and correlation, and demonstrate that the drag resistivity can attain a maximum value at room temperature and beyond, where hybridized plasmon-phonon modes contribute significantly. In particular, the hybridization of the plasmons with the hyperbolic phonons of h-BN, confined within the reststrahlen bands, enhance the drag resistivity. This study paves the way for the exploration of novel many-body physics phenomena in systems coupled through emerging 2D hyperbolic materials.
引用
收藏
相关论文
共 134 条
[31]  
Sarma SD(2012)Enhancement of coulomb drag in double-layer graphene structures by plasmons and dielectric background inhomogeneity Phys. Rev. B 86 121405-undefined
[32]  
Carrega M(2014)Plasmon-mediated coulomb drag between graphene waveguides Phys. Rev. B 89 165421-undefined
[33]  
Tudorovskiy T(2013)Photoexcitation cascade and multiple hot-carrier generation in graphene Nat. Phys. 9 248-undefined
[34]  
Principi A(2012)Coulomb drag in graphene-boron nitride heterostructures: Effect of virtual phonon exchange Phys. Rev. B 86 125448-undefined
[35]  
Katsnelson M(2014)Sub-diffractional volume-confined polaritons in the natural hyperbolic material hexagonal boron nitride Nat. Commun. 5 1125-undefined
[36]  
Polini M(2014)Tunable phonon polaritons in atomically thin van der waals crystals of boron nitride Science 343 421-undefined
[37]  
Narozhny B(2014)Highly confined low-loss plasmons in graphene-boron nitride heterostructures Nat. Mater. 14 125321-undefined
[38]  
Titov M(2007)Exchange and correlation effects on plasmon dispersions and coulomb drag in low-density electron bilayers Phys. Rev. B 75 214015-undefined
[39]  
Gornyi I(2009)Finite-temperature screening and the specific heat of doped graphene sheets J. Phys. A Math. Theor. 42 204004-undefined
[40]  
Ostrovsky P(2018)Acoustically-driven surface and hyperbolic plasmon-phonon polaritons in graphene/h-BN heterostructures on piezoelectric substrates J. Phys. D Appl. Phys 51 085443-undefined