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Colossal magneto-excitonic effects in 2D van der Waals magnetic semiconductor CrSBr
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2D magnetic semiconductors, which intrinsically couple a rich landscape of magnetic orders with tightly bound electron-hole pairs (excitons), present an exciting platform to investigate the interplay between optical and magnetic phenomena at the atomic scale. In such systems, the strength of magneto-optical effects determines how deeply the magnetic properties can be revealed. Here, we report the observation of remarkably strong magneto-excitonic effects in the 2D magnetic semiconductor CrSBr that allow probing its magnetic order with unprecedented sensitivity. By investigating optical transitions above the fundamental exciton energy, we discover a massive spectral shift approaching 100 meV under applied magnetic fields - an order of magnitude larger than previously observed magneto-excitonic responses. Our comprehensive magneto-optical experiments accompanied by detailed DFT calculations indicate the possible origin of the transitions exhibiting such intriguing behavior. These findings open avenues for exploiting magneto-excitonic phenomena at newly accessible regimes, enabling novel opto-spintronic applications previously limited by weak magnetic responses.
Forward citations
Cited by 3 Pith papers
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Optical Readout of Reconfigurable Layered Magnetic Domain Structure in CrSBr
Magneto-reflectance measurements enable non-contact optical readout of reconfigurable layered magnetic domains in CrSBr, revealing thickness-dependent intermediate states during antiferromagnetic-to-ferromagnetic transitions.
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Interplay of energy and charge transfer in WSe2/CrSBr heterostructures
In WSe2 on CrSBr, magnetic field tunes CrSBr's B exciton into resonance with WSe2 exciton states, correlating with enhanced WSe2 photoluminescence attributed to resonant energy transfer.
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Bulk and surface excitons in the van der Waals magnet CrSBr: Magneto-optical studies to 55 tesla
High-field magneto-optical data on CrSBr show two band-edge resonances with distinct magnetic shifts, supporting distinguishable bulk and surface exciton populations.
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