Anomalous conductivity of two-dimensional Dirac electrons in organic conductor under pressures
arXiv:2009.14594 · doi:10.7566/JPSJ.90.044709
Abstract
The electric conductivity of Dirac electrons in the organic conductor -(BEDT-TTF)I [BEDT-TTF = bis(ethylenedithio)tetrathiafulvalene] under pressure has been examined using a two-dimensional tight-binding (TB) model with both impurity and electron--phonon (e--p) scatterings. We study an anomalous temperature dependence of the conductivity, which shows a crossover from at low temperatures [region (I)] to at high temperatures [region (II)]. and are diagonal conductivities parallel and perpendicular to a stacking axis of molecules, respectively. The effect of Dirac cone tilting is dominant in region (I), whereas the anisotropy of the velocity of the Dirac cone is dominant in region (II). Such behavior is further examined by calculating the deviation of principal axes due to the off-diagonal conductivity and a nearly constant conductivity at high temperatures due to the e--p scattering, which is the extension of the previous result of the simple two-band model [Phys. Rev. B {\bf 98},161205 (2018)]. The relevance to experiments of organic conductors is discussed.
9 pages, 17 figures
References in corpus (4)
- Tilted anisotropic Dirac cones in quinoid-type graphene and alpha-(BEDT-TTF)_2I_3
- Electronic Properties Close to Dirac Cone in Two-Dimensional Organic Conductor -(BEDT-TTF)I
- Exotic Dirac Cones on the Band Structure of -STFI at Ambient Temperature and Pressure
- A tight-binding model of an ambient-pressure molecular Dirac electron system
Cited by in corpus (6)
- Anomalous Spin Transport Properties of Gapped Dirac Electrons with Tilting
- Electric and Magnetic Responses of Two-dimensional Dirac Electrons in Organic Conductor -(BETS)I
- Seebeck Effect of Dirac Electrons in Organic Conductors under Hydrostatic Pressure Using a Tight-Binding Model Derived from First Principles
- Conductivity of Two-dimensional Dirac Electrons Close to Merging in Organic Conductor -STFI at Ambient Pressure
- Seebeck Coefficient of Two-dimensional Dirac Electrons in Organic Conductor under Pressure
- Spin-Orbit Coupling Effect on the Seebeck Coefficient in Dirac Electron Systems in -(BETS)I