Atomistic spin textures on-demand in the van der Waals layered magnet CrSBr
arXiv:2107.00037 · doi:10.1038/s41467-022-32737-8
Abstract
Controlling magnetism in low dimensional materials is essential for designing devices that have feature sizes comparable to several critical length scales that exploit functional spin textures, allowing the realization of low-power spintronic and magneto-electric hardware. [1] Unlike conventional covalently-bonded bulk materials, van der Waals (vdW)-bonded layered magnets [2-4] offer exceptional degrees of freedom for engineering spin textures. [5] However, their structural instability has hindered microscopic studies and manipulations. Here, we demonstrate nanoscale structural control in the layered magnet CrSBr creating novel spin textures down to the atomic scale. We show that it is possible to drive a local structural phase transformation using an electron beam that locally exchanges the bondings in different directions, effectively creating regions that have vertical vdW layers embedded within the horizontally vdW bonded exfoliated flakes. We calculate that the newly formed 2D structure is ferromagnetically ordered in-plane with an energy gap in the visible spectrum, and weak antiferromagnetism between the planes. Our study lays the groundwork for designing and studying novel spin textures and related quantum magnetic phases down to single-atom sensitivity, potentially to create on-demand spin Hamiltonians probing fundamental concepts in physics, [6-10] and for realizing high-performance spintronic, magneto-electric and topological devices with nanometer feature sizes. [11,12]
Main manuscript: 11 pages, 4 figures ; Extended data: 22 pages, 19 figures
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Cited by in corpus (24)
- The bulk van der Waals layered magnet CrSBr is a quasi-1D material
- Two-dimensional fully-compensated Ferrimagnetism
- Sensing the local magnetic environment through optically active defects in a layered magnetic semiconductor
- Paramagnetic Electronic Structure of CrSBr: Comparison between Ab Initio GW Theory and Angle-Resolved Photoemission Spectroscopy
- Dielectric tunability of magnetic properties in orthorhombic ferromagnetic monolayer CrSBr
- Magnon-mediated exciton-exciton interaction in a van der Waals antiferromagnet
- Anisotropic effects in two-dimensional materials
- Ferromagnetic interlayer coupling in CrSBr crystals irradiated by ions
- FePd2Te2: An Anisotropic Two-Dimensional Ferromagnet with One-Dimensional Fe Chains
- Charge transfer-induced Lifshitz transition and magnetic symmetry breaking in ultrathin CrSBr crystals
- Raman Polarization Switching in CrSBr
- Local Fluctuations in Cavity Control of Ferroelectricity
- Imaging strain-controlled magnetic reversal in thin CrSBr
- Probing the Berezinskii-Kosterlitz-Thouless vortex unbinding transition in two-dimensional superconductors using local noise magnetometry
- Quantum Sensing of Broadband Spin Dynamics and Magnon Transport in Antiferromagnets
- Defect complexes in CrSBr revealed through electron microscopy and deep learning
- Resonance Raman Scattering and Anomalous Anti-Stokes Phenomena in CrSBr
- Magnetic Correlation Spectroscopy in CrSBr
- Constructing the Fulde-Ferrell-Larkin-Ovchinnikov state in antiferromagnetic insulator CrOCl
- A proposal for realizing Majorana fermions without external magnetic field in strongly correlated nanowires
- Resonant X-ray spectroscopies on Chromium orbitals in CrSBr
- Interplay of vibrational, electronic, and magnetic states in CrSBr
- Excitonic optical absorption in strained monolayer CrSBr
- Crystallographic Orientation-Dependent Magnetotransport in the Layered Antiferromagnet -- CrSBr