TY - JOUR
T1 - Superconductivity in the two-dimensional electron gas induced by high-energy optical phonon mode and large polarization of the SrTiO3 substrate
AU - Rosenstein, Baruch
AU - Shapiro, B. Ya
AU - Shapiro, I.
AU - Li, Dingping
N1 - Publisher Copyright:
©2016 American Physical Society.
PY - 2016/7/11
Y1 - 2016/7/11
N2 - Pairing in one-atomic-layer-thick two-dimensional electron gas (2DEG) by a single flat band of high-energy longitudinal optical phonons is considered. The polar dielectric SrTiO3 (STO) exhibits such an energetic phonon mode and the 2DEG is created both when one unit cell FeSe layer is grown on its 100 surface and on the interface with another dielectric like LaAlO3 (LAO). We obtain a quantitative description of both systems solving the gap equation for Tc for arbitrary Fermi energy ϵF, electron-phonon coupling λ, and the phonon frequency Ω, and direct (random-phase approximation) electron-electron repulsion strength α. The focus is on the intermediate region between the adiabatic, ϵF>>Ω, and the nonadiabatic, ϵF<<Ω, regimes. The high-temperature superconductivity in single-unit-cell FeSe/STO is possible due to a combination of three factors: high-longitudinal-optical phonon frequency, large electron-phonon coupling λ∼0.5, and huge dielectric constant of the substrate suppression the Coulomb repulsion. It is shown that very low density electron gas in the interfaces is still capable of generating superconductivity of the order of 0.1 K in LAO/STO.
AB - Pairing in one-atomic-layer-thick two-dimensional electron gas (2DEG) by a single flat band of high-energy longitudinal optical phonons is considered. The polar dielectric SrTiO3 (STO) exhibits such an energetic phonon mode and the 2DEG is created both when one unit cell FeSe layer is grown on its 100 surface and on the interface with another dielectric like LaAlO3 (LAO). We obtain a quantitative description of both systems solving the gap equation for Tc for arbitrary Fermi energy ϵF, electron-phonon coupling λ, and the phonon frequency Ω, and direct (random-phase approximation) electron-electron repulsion strength α. The focus is on the intermediate region between the adiabatic, ϵF>>Ω, and the nonadiabatic, ϵF<<Ω, regimes. The high-temperature superconductivity in single-unit-cell FeSe/STO is possible due to a combination of three factors: high-longitudinal-optical phonon frequency, large electron-phonon coupling λ∼0.5, and huge dielectric constant of the substrate suppression the Coulomb repulsion. It is shown that very low density electron gas in the interfaces is still capable of generating superconductivity of the order of 0.1 K in LAO/STO.
UR - http://www.scopus.com/inward/record.url?scp=84978393962&partnerID=8YFLogxK
U2 - 10.1103/physrevb.94.024505
DO - 10.1103/physrevb.94.024505
M3 - ???researchoutput.researchoutputtypes.contributiontojournal.article???
AN - SCOPUS:84978393962
SN - 2469-9950
VL - 94
JO - Physical Review B
JF - Physical Review B
IS - 2
M1 - 024505
ER -