Automated Author Profile

Larson, Daniel

Department of Physics, Harvard University, Cambridge, Massachusetts 02138, USA

Current S-Index

3.5

Sum of Dataset Indices for all datasets

Average Dataset Index per Dataset

1.8

Average Dataset Index per dataset

Total Datasets

2

Total datasets for this author

Average FAIR Score

88.5%

Average FAIR Score per dataset

Total Citations

4

Total citations to the author's datasets

Total Mentions

0

Total mentions of the author's datasets

S-Index Interpretation

S-Index Over Time

Cumulative Citations Over Time

Cumulative Mentions Over Time

Datasets

Electronic structure calculations of twisted multi-layer graphene superlattices

Quantum confinement endows two-dimensional (2D) layered materials with exceptional physics and novel properties compared to their bulk counterparts. Although certain two- and few-layer configurations of graphene have been realized and studied, a systematic investigation of the properties of arbitrarily layered graphene assemblies is still lacking. We introduce theoretical concepts and methods for the processing of materials information, and as a case study, apply them to investigate the electronic structure of multi-layer graphene-based assemblies in a high-throughput fashion. We provide a critical discussion of patterns and trends in tight binding band structures and we identify specific layered assemblies using low-dispersion electronic bands as indicators of potentially interesting physics like strongly correlated behavior. A combination of data-driven models for visualization and prediction is used to intelligently explore the materials space. This work more generally aims to increase confidence in the combined use of physics-based and data-driven modeling for the systematic refinement of knowledge about 2D layered materials, with implications for the development of novel quantum devices.

Authors

  • Tritsaris, Georgios A. ;
  • Carr, Stephen ;
  • Zhu, Ziyan ;
  • Xie, Yiqi ;
  • Torrisi, Steven B. ;
  • Tang, Jing ;
  • Mattheakis, Marios ;
  • Larson, Daniel ;
  • Kaxiras, Efthimios
2 Citations0 Mentions88% FAIR2.6 Dataset Index
10.24435/materialscloud:2020.0050/v12020

Electronic structure calculations of twisted multi-layer graphene superlattices

Quantum confinement endows two-dimensional (2D) layered materials with exceptional physics and novel properties compared to their bulk counterparts. Although certain two- and few-layer configurations of graphene have been realized and studied, a systematic investigation of the properties of arbitrarily layered graphene assemblies is still lacking. We introduce theoretical concepts and methods for the processing of materials information, and as a case study, apply them to investigate the electronic structure of multi-layer graphene-based assemblies in a high-throughput fashion. We provide a critical discussion of patterns and trends in tight binding band structures and we identify specific layered assemblies using low-dispersion electronic bands as indicators of potentially interesting physics like strongly correlated behavior. A combination of data-driven models for visualization and prediction is used to intelligently explore the materials space. This work more generally aims to increase confidence in the combined use of physics-based and data-driven modeling for the systematic refinement of knowledge about 2D layered materials, with implications for the development of novel quantum devices.

Authors

  • Tritsaris, Georgios A. ;
  • Carr, Stephen ;
  • Zhu, Ziyan ;
  • Xie, Yiqi ;
  • Torrisi, Steven B. ;
  • Tang, Jing ;
  • Mattheakis, Marios ;
  • Larson, Daniel ;
  • Kaxiras, Efthimios
2 Citations0 Mentions88% FAIR1.0 Dataset Index
10.24435/materialscloud:vt-zb2020