Wang Xingzhi, Cao Jun, Lu Zhengguang, Cohen Arielle, Kitadai Hikari, Li Tianshu, Tan Qishuo, Wilson Matthew, Lui Chun Hung, Smirnov Dmitry, Sharifzadeh Sahar, Ling Xi
Department of Chemistry, Boston University, Boston, MA, USA.
National High Magnetic Field Laboratory, Tallahassee, FL, USA.
Nat Mater. 2021 Jul;20(7):964-970. doi: 10.1038/s41563-021-00968-7. Epub 2021 Apr 26.
Antiferromagnets are promising components for spintronics due to their terahertz resonance, multilevel states and absence of stray fields. However, the zero net magnetic moment of antiferromagnets makes the detection of the antiferromagnetic order and the investigation of fundamental spin properties notoriously difficult. Here, we report an optical detection of Néel vector orientation through an ultra-sharp photoluminescence in the van der Waals antiferromagnet NiPS from bulk to atomically thin flakes. The strong correlation between spin flipping and electric dipole oscillator results in a linear polarization of the sharp emission, which aligns perpendicular to the spin orientation in the crystal. By applying an in-plane magnetic field, we achieve manipulation of the photoluminescence polarization. This correlation between emitted photons and spins in layered magnets provides routes for investigating magneto-optics in two-dimensional materials, and hence opens a path for developing opto-spintronic devices and antiferromagnet-based quantum information technologies.
反铁磁体因其太赫兹共振、多能级状态和无杂散场而成为自旋电子学中有前景的组件。然而,反铁磁体的净磁矩为零,这使得检测反铁磁序以及研究基本自旋特性极具挑战性。在此,我们报告了通过范德华反铁磁体NiPS中从体材料到原子级薄片的超尖锐光致发光对奈尔矢量取向进行光学检测。自旋翻转与电偶极子振荡器之间的强相关性导致尖锐发射的线性极化,该极化与晶体中的自旋取向垂直排列。通过施加面内磁场,我们实现了对光致发光极化的操控。层状磁体中发射光子与自旋之间的这种相关性为研究二维材料中的磁光现象提供了途径,从而为开发光自旋电子器件和基于反铁磁体的量子信息技术开辟了道路。