Gustavo S. Orozco-Galvan Data-verified
Affiliation confirmed via AI analysis of OpenAlex, ORCID, and web sources.
Researcher
unknown
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Biography and Research Information
OverviewAI-generated summary
Gustavo S. Orozco-Galvan's research focuses on theoretical condensed matter physics, specifically investigating the electronic and thermal properties of low-dimensional materials. His work involves developing and applying theoretical models to understand phenomena such as phase transitions and topological properties in systems like silicene, germanene, and stanene. Orozco-Galvan utilizes tight-binding models, incorporating factors like sublattice asymmetry and spin-orbit coupling, to explore the behavior of Dirac semimetals and other novel electronic materials. He has authored or co-authored four publications, accumulating 11 citations, and holds an h-index of 2. His research network includes collaborators at the University of Arkansas at Fayetteville, such as Jonathan Mishler and Salvador Barraza-Lopez, with whom he has shared multiple publications. Orozco-Galvan remains an active researcher, with his most recent publication in 2024.
Metrics
- h-index: 2
- Publications: 4
- Citations: 11
Selected Publications
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Tight-binding model with sublattice-asymmetric spin-orbit coupling for square-net nodal line Dirac semimetals (2024)
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Thermally driven phase transitions in freestanding low-buckled silicene, germanene, and stanene (2023)
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Tight-binding model with sublattice-asymmetric spin-orbit coupling for square-net nodal line Dirac semimetals (2023)
Collaboration Network
Top Collaborators
- Thermally driven phase transitions in freestanding low-buckled silicene, germanene, and stanene
- Tight-binding model with sublattice-asymmetric spin-orbit coupling for square-net nodal line Dirac semimetals
- Tight-binding model with sublattice-asymmetric spin-orbit coupling for square-net nodal line Dirac semimetals
- Tight-binding model with sublattice-asymmetric spin-orbit coupling for square-net nodal line Dirac semimetals
- Tight-binding model with sublattice-asymmetric spin-orbit coupling for square-net nodal line Dirac semimetals
- Thermally-driven phase transitions in freestanding low-buckled silicene, germanene, and stanene
- Thermally-driven phase transitions in freestanding low-buckled silicene, germanene, and stanene
- Thermally driven phase transitions in freestanding low-buckled silicene, germanene, and stanene
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