0 Datasets
0 Files
Get instant academic access to this publication’s datasets.
Yes. After verification, you can browse and download datasets at no cost. Some premium assets may require author approval.
Files are stored on encrypted storage. Access is restricted to verified users and all downloads are logged.
Yes, message the author after sign-up to request supplementary files or replication code.
Join 50,000+ researchers worldwide. Get instant access to peer-reviewed datasets, advanced analytics, and global collaboration tools.
✓ Immediate verification • ✓ Free institutional access • ✓ Global collaborationJoin our academic network to download verified datasets and collaborate with researchers worldwide.
Get Free AccessWe present a systematic experimental and theoretical study of the two-phonon (2D) Raman scattering in graphene under uniaxial tension. The external perturbation unveils that the 2D mode excited with 785 nm has a complex line-shape mainly due to the contribution of two distinct double resonance scattering processes (inner and outer) in the Raman signal. The splitting depends on the direction of the applied strain and the polarization of the incident light. The results give new insight into the nature of the 2D band and have significant implications for the use of graphene as reinforcement in composites since the 2D mode is crucial to assess how effectively graphene uptakes an applied stress or strain.
Otakar Frank, Marcel Mohr, Janina Maultzsch, C. Thomsen, Ibtsam Riaz, R. Jalil, Konstantin ‘kostya’ Novoselov, Georgia Tsoukleri, J. Parthenios, Konstantinos Papagelis, Ladislav Kavan, Costas Galiotis (2011). Raman 2D-Band Splitting in Graphene: Theory and Experiment. ACS Nano, 5(3), pp. 2231-2239, DOI: 10.1021/nn103493g.
Datasets shared by verified academics with rich metadata and previews.
Authors choose access levels; downloads are logged for transparency.
Students and faculty get instant access after verification.
Type
Article
Year
2011
Authors
12
Datasets
0
Total Files
0
Language
English
Journal
ACS Nano
DOI
10.1021/nn103493g
Access datasets from 50,000+ researchers worldwide with institutional verification.
Get Free Access