Gao Qian, Yan Qimin, Hu Zhenpeng, Chen Lan
School of Physics, Nankai University, Tianjin, 300071, China.
Department of Physics, Northeastern University, Boston, MA, 02115, USA.
Adv Sci (Weinh). 2024 Oct;11(37):e2305059. doi: 10.1002/advs.202305059. Epub 2023 Oct 15.
The appearance of van Hove singularities near the Fermi level leads to prominent phenomena, including superconductivity, charge density wave, and ferromagnetism. Here a bilayer Kagome lattice with multiple van Hove singularities is designed and a novel borophene with such lattice (BK-borophene) is proposed by the first-principles calculations. BK-borophene, which is formed via three-center two-electron (3c-2e) σ-type bonds, is predicted to be energetically, dynamically, thermodynamically, and mechanically stable. The electronic structure hosts both conventional and high-order van Hove singularities in one band. The conventional van Hove singularity resulting from the horse saddle is 0.065 eV lower than the Fermi level, while the high-order one resulting from the monkey saddle is 0.385 eV below the Fermi level. Both the singularities lead to the divergence of electronic density of states. Besides, the high-order singularity is just intersected to a Dirac-like cone, where the Fermi velocity can reach 1.34 × 10 m s. The interaction between the two Kagome lattices is critical for the appearance of high-order van Hove singularities. The novel bilayer Kagome borophene with rich and intriguing electronic structure offers an unprecedented platform for studying correlation phenomena in quantum material systems and beyond.
范霍夫奇点在费米能级附近的出现会导致一些显著现象,包括超导性、电荷密度波和铁磁性。本文设计了一种具有多个范霍夫奇点的双层 Kagome 晶格,并通过第一性原理计算提出了一种具有这种晶格的新型硼烯(BK-硼烯)。BK-硼烯通过三中心两电子(3c-2e)σ型键形成,预计在能量、动力学、热力学和力学上都是稳定的。其电子结构在一个能带中同时存在传统和高阶范霍夫奇点。由马鞍形产生的传统范霍夫奇点比费米能级低 0.065 eV,而由猴鞍形产生的高阶奇点比费米能级低 0.385 eV。这两种奇点都会导致电子态密度的发散。此外,高阶奇点刚好与一个类狄拉克锥相交,在该点费米速度可达 1.34×10 m/s。两个 Kagome 晶格之间的相互作用对于高阶范霍夫奇点的出现至关重要。这种具有丰富且引人入胜的电子结构的新型双层 Kagome 硼烯为研究量子材料系统及其他相关现象提供了一个前所未有的平台。