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Published on: July 24, 2015
Spin-Dependent ππ^{*} Gap in Graphene on a Magnetic Substrate.
P M Sheverdyaeva1, G Bihlmayer2, E Cappelluti1
1<a href="https://ror.org/01zz9wh30">CNR-Istituto di Struttura della Materia (CNR-ISM)</a>, Strada Statale 14, km 163.5, 34149 Trieste, Italy.
We discovered that inserting Europium (Eu) into graphene on Nickel(111) creates a gapped electronic structure in graphene. This modification lifts spin degeneracy, leading to unique topological properties and a polaronic band near the Fermi level.
Area of Science:
- Condensed Matter Physics
- Materials Science
- Surface Science
Background:
- Graphene on magnetic substrates exhibits unique electronic and magnetic properties.
- Understanding interfacial effects is crucial for designing novel electronic devices.
- Europium (Eu) intercalation can modify interface characteristics.
Purpose of the Study:
- To investigate the electronic properties of graphene intercalated with Europium on a Nickel(111) substrate.
- To analyze the impact of Eu on graphene's Dirac cones and spin properties.
- To characterize the topological nature of the observed electronic band structure.
Main Methods:
- Angle- and spin-resolved photoemission spectroscopy (ARPES and SR-PES).
- Ab initio theoretical calculations.
- Analysis of electronic band structure and Dirac cone dispersions.
Main Results:
- Eu intercalation opens a gap in the freestanding ππ* Dirac cones at the K point.
- Spin degeneracy of Dirac cones is lifted due to graphene-Eu state mixing.
- A large spin-dependent topological gap emerges, featuring significant Berry curvature.
- A spin-polarized Van Hove singularity near the Fermi level induces a polaronic band.
Conclusions:
- Europium intercalation fundamentally alters graphene's electronic properties at the Ni(111) interface.
- The observed topological gap and polaronic band offer new avenues for spintronics and topological electronics.
- This study highlights the potential of controlled interface engineering for novel quantum materials.
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