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Maria C. Asensio

Researcher at Spanish National Research Council

Publications -  170
Citations -  9031

Maria C. Asensio is an academic researcher from Spanish National Research Council. The author has contributed to research in topics: Graphene & Angle-resolved photoemission spectroscopy. The author has an hindex of 40, co-authored 163 publications receiving 7651 citations. Previous affiliations of Maria C. Asensio include Autonomous University of Madrid & Complutense University of Madrid.

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Evidencing the need for high spatial resolution in angle-resolved photoemission experiments

TL;DR: In this article, the authors demonstrate the impact of increased spatial resolution by evidencing faint spatial inhomogeneity in the ARPES signal of a graphene sample that would go undetected in arPES setups possessing lower spatial resolution.
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Fermi surface of a triangular lattice overlayer: Pb/Ge(111) α-phase

TL;DR: In this paper, the Fermi surface topology is characterized by an undulated shape, which resembles the results of theoretical calculations, and the experimental FermI momentum along the ΓK and ΓM direction is 0.30±0.03 and 0.40± 0.03 A−1, respectively.
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Synergy of diffraction and spectroscopic techniques to unveil the crystal structure of antimonic acid.

TL;DR: In this article, a pyrochlore-type structure of stoichiometric formula (H3O)1.20(7)H0.77(9)Sb2O6.7 water molecules per formula were assessed as moisture water by thermal analysis.
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Gestational folic acid deficiency alters embryonic eye development: Possible role of basement membrane proteins in eye malformations.

TL;DR: A maternal FAD diet for a short-term period causes eye developmental defects and induces overexpression of both collagen IV and laminin-1, which is related to alterations in the expression of basement membrane proteins.
Journal Article

Large-Area Epitaxial Growth of Curvature-Stabilized ABC Trilayer Graphene with Tunable Band Gap

TL;DR: In this paper, a chemical vapor deposition approach to TLG growth is presented that utilizes substrate curvature to yield an enhanced fraction and size of ABC domains, which can be used for large-scale synthesis of epitaxial ABC-TLG.