论文标题
拓扑超导性的关键野外测量
Critical field measure for topological superconductivity
论文作者
论文摘要
利用量子力学定律执行量子计算的有希望的方向是拓扑量子计算,拓扑超导性是物理平台之一。进行了深入的理论研究,并在实现拓扑超导性方面进行了巨大的实验努力,尽管辩论仍然主要是因为令人信服的检测技术不足。 Here we report a theoretical finding in a superconductor with surface or edge states, where the critical field is found to obey the unique power-law temperature dependence $B_{c3}\sim (T_c-T)^γ$ with $T_c$ being the onset critical temperature of superconductivity and the fractional exponent $γ= 2/3$, differing from the conventional values of $γ=1/2$ and $1$.因此,在三维(2D)系统中的三维(3D)系统中,拓扑表面超导性预计和拓扑边缘超导性。该措施在固有的拓扑超导体fete $ _ {1-x} $ se $ _ {x} $($ x \ sim 0.5 $)上的应用支持这种可访问,方便且可靠的运输技术的有效性,以识别拓扑超导能力。关于拓扑超导性的理论的新形式以及已发达的识别技术有望指导未来对拓扑超导体的搜索。
A promising direction for harnessing the laws of quantum mechanics to perform quantum computation is the topological quantum computation, for which topological superconductivity is one of the physical platforms. Intensive theoretical studies have been carried out and followed by tremendous experimental efforts in the realization of topological superconductivity, though debates remain mainly because of the inadequacy of the convincing detection techniques. Here we report a theoretical finding in a superconductor with surface or edge states, where the critical field is found to obey the unique power-law temperature dependence $B_{c3}\sim (T_c-T)^γ$ with $T_c$ being the onset critical temperature of superconductivity and the fractional exponent $γ= 2/3$, differing from the conventional values of $γ=1/2$ and $1$. The topological surface superconductivity is hence expected in the three-dimensional (3D) system and the topological edge superconductivity in the two-dimensional (2D) system. The application of this measure to the intrinsic topological superconductors FeTe$_{1-x}$Se$_{x}$ ($x\sim 0.5$) supports the validity of such an accessible, convenient, and reliable transport technique for the identification of topological superconductivity. The new form of theory on topological superconductivity together with the developed identification technique is expected to guide the search of topological superconductors in future.