Nguyen Lan-Anh T, Dhakal Krishna P, Lee Yuhan, Choi Wooseon, Nguyen Tuan Dung, Hong Chengyun, Luong Dinh Hoa, Kim Young-Min, Kim Jeongyong, Lee Myeongwon, Choi Taeyoung, Heinrich Andreas J, Kim Ji-Hee, Lee Donghun, Duong Dinh Loc, Lee Young Hee
Center for Integrated Nanostructure Physics (CINAP), Institute for Basic Science (IBS), Suwon 16419, Republic of Korea.
Department of Energy Science, Sungkyunkwan University, Suwon 16419, Republic of Korea.
ACS Nano. 2021 Dec 28;15(12):20267-20277. doi: 10.1021/acsnano.1c08375. Epub 2021 Nov 22.
While valley polarization with strong Zeeman splitting is the most prominent characteristic of two-dimensional (2D) transition metal dichalcogenide (TMD) semiconductors under magnetic fields, enhancement of the Zeeman splitting has been demonstrated by incorporating magnetic dopants into the host materials. Unlike Fe, Mn, and Co, V is a distinctive dopant for ferromagnetic semiconducting properties at room temperature with large Zeeman shifting of band edges. Nevertheless, little known is the excitons interacting with spin-polarized carriers in V-doped TMDs. Here, we report anomalous circularly polarized photoluminescence (CPL) in a V-doped WSe monolayer at room temperature. Excitons couple to V-induced spin-polarized holes to generate spin-selective positive trions, leading to differences in the populations of neutral excitons and trions between left and right CPL. Using transient absorption spectroscopy, we elucidate the origin of excitons and trions that are inherently distinct for defect-mediated and impurity-mediated trions. Ferromagnetic characteristics are further confirmed by the significant Zeeman splitting of nanodiamonds deposited on the V-doped WSe monolayer.
虽然具有强塞曼分裂的谷极化是二维(2D)过渡金属二硫属化物(TMD)半导体在磁场下最显著的特征,但通过将磁性掺杂剂掺入主体材料中已证明了塞曼分裂的增强。与铁、锰和钴不同,钒是一种独特的掺杂剂,在室温下具有铁磁半导体特性,能带边缘有大的塞曼位移。然而,关于钒掺杂TMD中激子与自旋极化载流子相互作用的情况却鲜为人知。在此,我们报道了室温下钒掺杂WSe单层中的反常圆偏振光致发光(CPL)。激子与钒诱导的自旋极化空穴耦合,产生自旋选择性正三激子,导致左右CPL之间中性激子和三激子的数量存在差异。利用瞬态吸收光谱,我们阐明了激子和三激子的起源,它们对于缺陷介导和杂质介导的三激子来说本质上是不同的。沉积在钒掺杂WSe单层上的纳米金刚石的显著塞曼分裂进一步证实了铁磁特性。