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  Imaging van Hove Singularity Heterogeneity in Overdoped Graphene

Blackwell, R., Du, Z., Okugawa, T., Kundu, A., Wu, Z., Drozdov, I., et al. (2025). Imaging van Hove Singularity Heterogeneity in Overdoped Graphene.

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 Creators:
Blackwell, R.1, Author
Du, Z.1, 2, Author
Okugawa, T.3, 4, 5, Author           
Kundu, A.1, 6, Author
Wu, Z.1, Author
Drozdov, I.1, Author
Rubio, A.4, 5, 7, 8, Author           
Kennes, D. M.3, 4, 5, Author           
Fujita, K.1, Author
Pasupathy, A.1, 9, Author
Affiliations:
1Condensed Matter Physics and Materials Science Department, Brookhaven National Laboratory, ou_persistent22              
2Department of Physics and Astronomy, Stony Brook University, ou_persistent22              
3Institut für Theorie der Statistischen Physik, RWTH Aachen, 52056 Aachen, Germany and JARA - Fundamentals of Future Information Technology, ou_persistent22              
4Theory Group, Theory Department, Max Planck Institute for the Structure and Dynamics of Matter, Max Planck Society, ou_2266715              
5Center for Free-Electron Laser Science, ou_persistent22              
6National Synchrotron Light Source II, Brookhaven National Laboratory, ou_persistent22              
7Center for Computational Quantum Physics, Simons Foundation Flatiron Institut, ou_persistent22              
8Nano-Bio Spectroscopy Group, Departamento de Fisica de Materiales, Universidad del País Vasco, UPV/EHU, ou_persistent22              
9Department of Physics, Columbia University, ou_persistent22              

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Free keywords: Condensed Matter, Mesoscale and Nanoscale Physics, cond-mat.mes-hall, Condensed Matter, Strongly Correlated Electrons, cond-mat.str-el
 Abstract: Tuning the chemical potential of a solid to the vicinity of a van Hove singularity (vHS) is a well-established route to discovering emergent quantum phases. In monolayer graphene, the use of electron-donating metal layers has recently emerged as a method to dope the chemical potential to the nearest vHS, as evidenced by Angle-Resolved Photoemission Spectroscopy (ARPES) measurements. In this work, we study the spatial uniformity of the doping from this process using spectroscopic imaging scanning tunneling microscopy (SI-STM). Using molecular beam epitaxy (MBE), we achieve electron doping of graphene on SiC using Ytterbium (Yb-Graphene). We show using in-situ ARPES that the chemical potential is shifted to within 250 meV of the vHS. Using in-situ SI-STM, we establish that there exists significant inhomogeneity in the vHS position in overdoped graphene. We find two separate reasons for this. First, the spatial inhomogeneity of the intercalated Yb leads to local variations in the doping, with a length scale of inhomogeneity set by the screening length of ~ 3 nm. Second, we observe the presence of substitutional Yb dopants in the graphene basal plane. These Yb dopants cause a strong local shift of the doping, along with a renormalization of the quasiparticle amplitude. Theoretical calculations confirm that the Yb impurities effectively change the local potential, thus energetically shifting the position of the van Hove singularity. Our results point to the importance of considering the spatial structure of doping and its inextricable link to electronic structure.

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Language(s): eng - English
 Dates: 2025-02-11
 Publication Status: Published online
 Pages: 24
 Publishing info: -
 Table of Contents: -
 Rev. Type: No review
 Identifiers: arXiv: 2502.07899
 Degree: -

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