Pang Zhao-Xia, Zhao Yong-Chun, Ji Wei-Xiao, Wang Yong, Li Ping
School of Physics and Technology, University of Jinan, Jinan, Shandong 250022, People's Republic of China.
Phys Chem Chem Phys. 2021 Jun 2;23(21):12280-12287. doi: 10.1039/d1cp01424b.
Nodal-ring semimetals with band crossing are the new type of quantum materials that have attracted considerable interest from scholars for research. In general, the spin-orbit coupling (SOC) effect opens a band gap at the Dirac point. Therefore, finding 2D nodal-ring semimetals with resistance to SOC has more challenges. Based on first-principles calculations, we propose here that the two-dimensional (2D) Ta2C3 monolayer is a novel nodal-ring semimetal. In particular, Ta2C3 forms six closed rings in the Brillouin zone (BZ) with SOC, which originates from the dxy,x2-y2 orbitals of Ta and the pz orbitals of C. The nodal-ring bands at the K point in Ta2C3 exhibits characteristics of valley splitting and spin polarization due to the breaking of inversion symmetry and SOC. The masximal spin-splitting at the K point is as large as 268.87 meV and 61.90 meV for the conduction band minimum (CBM) and valence band maximum (VBM), respectively. The massless Dirac fermions in the non-equivalent valley have the opposite Berry curvature and spin moment. Therefore, 2D Ta2C3 is novel spin-valley-coupled nodal-ring semimetal. In addition, we found interesting negative differential resistance effects when calculating its transport properties. Our results not only provide an ideal platform for studying the combination of new physical properties, spintronics and valleytronics, but also open the way for designing low-power and fast-transport electronic devices.
具有能带交叉的节环半金属是一类新型量子材料,已引起学者们的广泛研究兴趣。一般来说,自旋轨道耦合(SOC)效应会在狄拉克点打开一个带隙。因此,寻找对SOC具有抗性的二维节环半金属面临更多挑战。基于第一性原理计算,我们在此提出二维Ta2C3单层是一种新型节环半金属。具体而言,Ta2C3在布里渊区(BZ)中与SOC形成六个闭合环,这源于Ta的dxy、x2 - y2轨道和C的pz轨道。由于空间反演对称性和SOC的破坏,Ta2C3中K点处的节环能带表现出谷分裂和自旋极化的特性。对于导带最小值(CBM)和价带最大值(VBM),K点处的最大自旋分裂分别高达268.87 meV和61.90 meV。不等价谷中的无质量狄拉克费米子具有相反的贝里曲率和自旋矩。因此,二维Ta2C3是一种新型的自旋谷耦合节环半金属。此外,我们在计算其输运性质时发现了有趣的负微分电阻效应。我们的结果不仅为研究新物理性质、自旋电子学和谷电子学的结合提供了一个理想平台,也为设计低功耗和快速传输的电子器件开辟了道路。