论文标题
弱拓扑绝缘子的压力诱导的超导性
Pressure-induced superconductivity in weak topological insulator BiSe
论文作者
论文摘要
Quasi-Two层分层Bise是一种具有BI2SE3-BI2-BI2SE3单元的天然超级晶格,最近被预测为双重拓扑绝缘子,同时较弱的拓扑绝缘子以及拓扑结晶绝缘子。在这里,使用结构,传输,光谱测量和密度功能理论计算,我们表明,在压力下,Bise具有丰富的相图,超导性具有TC〜8K的出现。在8 GPA和13 GPA时,分别鉴定出了具有不同超导性能的具有不同超导特性的符合质量纠结的原晶和CSCL型立方结构的顺序结构过渡。我们对磁性传导性弱抗反定位的观察表明,旋转轨道耦合(SOC)在将非平凡带拓扑保留在三角阶段中起着重要作用,并且可能实现了2D拓扑超导性。理论分析表明,通过提高电子偶联强度,SOC可显着增强高压立方相的超导TC。狄拉克状表面状态的同时出现表明立方偏见是3D-Topologicy超导体的合适候选者。
Quasi-two-dimensional layered BiSe, a natural super-lattice with Bi2Se3-Bi2-Bi2Se3 units, has recently been predicted to be a dual topological insulator, simultaneously weak topological insulator as well as topological crystalline insulator. Here using structural, transport, spectroscopic measurements and density functional theory calculations, we show that BiSe exhibits rich phase diagram with the emergence of superconductivity with Tc ~8K under pressure. Sequential structural transitions into SnSe-type energetically tangled orthorhombic and CsCl-type cubic structures having distinct superconducting properties are identified at 8 GPa and 13 GPa respectively. Our observation of weak-antilocalization in magneto-conductivity suggests that spin-orbit coupling (SOC) plays a significant role in retaining non-trivial band topology in the trigonal phase with possible realization of 2D topological superconductivity. Theoretical analysis reveals that SOC significantly enhances superconducting Tc of the high-pressure cubic phase through an increase in electron-phonon coupling strength. Simultaneous emergence of Dirac-like surface states suggests cubic BiSe as a suitable candidate for the 3D-topological superconductor.