论文标题
迷人的Rashba Hubbard模型中的旋转单线拓扑超导性
Spin singlet topological superconductivity in the attractive Rashba Hubbard model
论文作者
论文摘要
在Zeeman磁场中具有反对称旋转轨道耦合的完全间隙,自旋单线超导体提供了一种有希望的途径,以实现具有非亚伯式拓扑秩序的超导状态,从而实现易于断层的量子计算。在这里,我们使用量子蒙特卡洛动力簇近似来研究掺杂的二维有吸引力的哈伯德模型的超导性能,该模型在Zeeman磁场中与Rashba旋转轨道耦合。我们通常发现Rashba耦合对S波超导性具有有益的作用。在有限的Zeeman领域的存在下,当Pauli成对的破坏性抑制超导性时,Rashba耦合抵消了Zeeman场通过混合旋转而造成的旋转失衡,从而在有限温度下恢复了超导性。我们表明,自旋轨道耦合的这种有利效应可追溯到振幅驱动的增强,以增强在时间转移状态下一对电子的传播。此外,通过检查相互作用模型的费米表面,我们表明,对于足够大的Rashba耦合和Zeeman场,超导状态有望在拓扑上是非平凡的。
Fully gapped, spin singlet superconductors with antisymmetric spin-orbit coupling in a Zeeman magnetic field provide a promising route to realize superconducting states with non-Abelian topological order and therefore fault-tolerant quantum computation. Here we use a quantum Monte Carlo dynamical cluster approximation to study the superconducting properties of a doped two-dimensional attractive Hubbard model with Rashba spin-orbit coupling in a Zeeman magnetic field. We generally find that the Rashba coupling has a beneficial effect towards s-wave superconductivity. In the presence of a finite Zeeman field, when superconductivity is suppressed by Pauli pair-breaking, the Rashba coupling counteracts the spin imbalance created by the Zeeman field by mixing the spins, and thus restores superconductivity at finite temperatures. We show that this favorable effect of the spin-orbit coupling is traced to a spin-flip driven enhancement of the amplitude for the propagation of a pair of electrons in time-reversed states. Moreover, by inspecting the Fermi surface of the interacting model, we show that for sufficiently large Rashba coupling and Zeeman field, the superconducting state is expected to be topologically non-trivial.