论文标题

Weyl Semimetal NBP的拓扑Lifshitz过渡,装饰有重元素

Topological Lifshitz transition in Weyl semimetal NbP decorated with heavy elements

论文作者

Wadge, Ashutosh S, Kowalski, Bogdan J, Autieri, Carmine, Iwanowski, Przemysław, Hruban, Andrzej, Olszowska, Natalia, Rosmus, Marcin, Kołodziej, Jacek, Wiśniewski, Andrzej

论文摘要

对原位覆盖NBP半学的FERMI表面修饰的研究通过角度分辨光发射光谱(ARPES)进行了重型元素PB和NB Ultrathin层的研究。首先,研究了电子结构的原始单晶体,具有(0 0 1)表面的两个可能的终止(p和nb)。这两个切割平面的电子状态的性质不同:p端的表面显示勺子和领结形状的指纹,而这些形状不存在于NB端端的表面。 ARPES研究表明,即使是PB的1个单层(ML)也会在P和NB终止的表面引起拓扑量子Lifshitz转变(TQLT)。沉积的PB 5D电子具有广泛的原子轨道,可与PB端端的表面进行强杂交,并在费米能的相应变化中。与PB相比,NB的扰动能力较小,因为NB的自旋轨道耦合较弱。经受大约1.3 mL NB的表面装饰的NB终止表面在费米表面没有显着修饰。对于NB装饰的p端面表面,大约1 mL的沉积会修饰NBP的电子结构,并且位于TQLT的边缘。尽管表面上的重元素具有强大的自旋轨道和强大的杂交,但由于块状拓扑的稳健性,可以观察到表面状态的TQLT。

Studies of the Fermi surface modification after in-situ covering NbP semimetal with heavy elements Pb and Nb ultrathin layers were performed by means of angle-resolved photoemission spectroscopy (ARPES). First, the electronic structure was investigated for pristine single crystals with two possible terminations (P and Nb) of the (0 0 1) surface. The nature of the electronic states of these two cleaving planes is different: P-terminated surface shows spoon and bow tie shaped fingerprints, whereas these shapes are not present in Nb-terminated surfaces. ARPES studies show that even 1 monolayer (ML) of Pb causes topological quantum Lifshitz transition (TQLT) in P- and Nb-terminated surfaces. Deposited Pb 5d electrons have wide extended atomic orbitals which leads to strong hybridization with Pb-terminated surface and a corresponding shift in the Fermi energy. Nb has less capability to perturb the system than Pb because Nb has weaker spin-orbit coupling than Pb. Nb-terminated surface subjected to surface decoration with approximately 1.3 ML of Nb shows no dramatic modification in the Fermi surface. In the case of Nb decorated P-terminated surface, deposition of approximately 1 ML modifies the electronic structure of NbP and it is on the verge of TQLT. Despite the strong spin-orbit and strong hybridization of the heavy elements on the surface, it is possible to observe the TQLT of the surface states thanks to the robustness of the bulk topology.

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