Quantum phase structural stability and switching in twist-graphenes

  • Melchakova, Iu. A.; 
  • Oyeniyi, G. T.; 
  • Engelgardt, D. R.; 
  • Polyutov, S. P.; 
  • Avramov, P. V.
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초록

This study examines the electronic structure and potential energy surfaces of migration paths in various types of bilayer graphene. Using periodic boundary conditions, density functional theory (DFT), and the generalized gradient approximation (GGA) exchange-correlation functional, along with the nudged elastic band (NEB) method, to investigate the structural stability and dynamic equilibrium of twisted bilayer graphenes (TBGs) with twist angles of 13.2 degrees and 21.8 degrees. The results suggest that twist angles significantly impact atomic and electronic properties, including moire<acute accent> patterns, superlattice periods, and interfragment distances, which in turn influence bilayer graphene strongly correlated electronic quantum states. This research elucidates the fundamental mechanisms of superlubricity and mutual migration pathways of graphene fragments in TBGs. The low migration barriers observed could facilitate transitions between different energy-related phases, which are determined by the lattice moire<acute accent> patterns and the localization character of the electronic states, resulting in superlubricity. External mechanical factors may affect the quantum properties of TBGs, indicating potential applications in quantum computing and quantum sensing.

키워드

Twisted bilayered graphene; PES; Migration; Heterostructure; DFT; Tribology; INITIO MOLECULAR-DYNAMICS; ELASTIC BAND METHOD; MAGIC-ANGLE; ATOMIC-STRUCTURE; POINTS; STATES
제목
Quantum phase structural stability and switching in twist-graphenes
저자
Melchakova, Iu. A.; Oyeniyi, G. T.; Engelgardt, D. R.; Polyutov, S. P.; Avramov, P. V.
DOI
10.1016/j.flatc.2024.100702
발행일
2024-09
유형
Article
저널명
FLATCHEM
권
47