Kopnin N B, Sonin E B
Low Temperature Laboratory, Helsinki University of Technology, P.O. Box 2200, FIN-02015 HUT, Finland.
Phys Rev Lett. 2008 Jun 20;100(24):246808. doi: 10.1103/PhysRevLett.100.246808.
Possible superconductivity of electrons with the Dirac spectrum is analyzed using the BCS model. We calculate the critical temperature, the superconducting energy gap, and the supercurrent as functions of the doping level and of the pairing interaction strength. Zero doping is characterized by the existence of a quantum critical point such that the critical temperature vanishes below some finite value of the interaction strength. However, the critical temperature remains finite for any nonzero electron or hole doping level when the Fermi energy is shifted away from the Dirac point. As distinct from usual superconductors, the supercurrent density is not proportional to the number of electrons but is strongly decreased due to the presence of the Dirac point.
利用BCS模型分析了具有狄拉克谱的电子的可能超导性。我们计算了临界温度、超导能隙和超电流作为掺杂水平和配对相互作用强度的函数。零掺杂的特征是存在一个量子临界点,使得临界温度在相互作用强度的某个有限值以下消失。然而,当费米能从狄拉克点移开时,对于任何非零电子或空穴掺杂水平,临界温度仍然是有限的。与常规超导体不同,超电流密度与电子数量不成正比,而是由于狄拉克点的存在而大幅降低。