Imaging spin dynamics in monolayer WS2 by time-resolved Kerr rotation microscopy

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Abstract

Monolayer transition metal dichalcogenides (TMD) have immense potential for future spintronic and valleytronic applications due to their 2D nature and long spin/valley lifetimes. We investigate the origin of these long-lived states in n-type WS2 using time-resolved Kerr rotation microscopy and photoluminescence microscopy with ∼1m spatial resolution. Comparing the spatial dependence of the Kerr rotation signal and the photoluminescence reveals a correlation with neutral exciton emission, which is likely due to the transfer of angular momentum to resident conduction electrons with long spin/valley lifetimes. In addition, we observe an unexpected anticorrelation between the Kerr rotation and trion emission, which provides evidence for the presence of long-lived spin/valley-polarized dark trions. We also find that the spin/valley polarization in WS2 is robust to magnetic fields up to 700 mT, indicative of spins and valleys that are stabilized with strong spin-orbit fields.

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McCormick, E. J., Newburger, M. J., Luo, Y. K., McCreary, K. M., Singh, S., Martin, I. B., … Kawakami, R. K. (2018). Imaging spin dynamics in monolayer WS2 by time-resolved Kerr rotation microscopy. 2D Materials, 5(1). https://doi.org/10.1088/2053-1583/aa98ae

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