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Imaging the electron charge density in monolayer MoS 2 at the Ångstrom scale.

Joel MartisSandhya SusarlaArchith RayabharamCong SuTimothy PaulePhilipp PelzCassandra HuffXintong XuHao-Kun LiMarc JaikissoonVictoria ChenEric PopKrishna C SaraswatAlex ZettlNarayana R AluruRamamoorthy RameshPeter ErciusArun Majumdar
Published in: Nature communications (2023)
Four-dimensional scanning transmission electron microscopy (4D-STEM) has recently gained widespread attention for its ability to image atomic electric fields with sub-Ångstrom spatial resolution. These electric field maps represent the integrated effect of the nucleus, core electrons and valence electrons, and separating their contributions is non-trivial. In this paper, we utilized simultaneously acquired 4D-STEM center of mass (CoM) images and annular dark field (ADF) images to determine the projected electron charge density in monolayer MoS 2 . We evaluate the contributions of both the core electrons and the valence electrons to the derived electron charge density; however, due to blurring by the probe shape, the valence electron contribution forms a nearly featureless background while most of the spatial modulation comes from the core electrons. Our findings highlight the importance of probe shape in interpreting charge densities derived from 4D-STEM and the need for smaller electron probes.
Keyphrases
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