Predicting edge-localized monovacancy defects in zigzag graphene nanoribbons from Floquet quasienergy spectrum

被引:0
作者
Kumar, Gulshan [1 ]
Kumar, Shashikant [1 ]
Kumar, Ajay [1 ]
Parida, Prakash [1 ]
机构
[1] Indian Inst Technol Patna, Dept Phys, Patna 801106, Bihar, India
关键词
BLOCH ELECTRONS; STATES; GRAPHITE; SURFACE; FIELD;
D O I
10.1103/PhysRevB.109.235401
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
In this work we prescribe a theoretical framework aiming at predicting the position of monovacancy defects at the edges of zigzag graphene nanoribbons (ZGNRs) using Floquet-Bloch formalism, which can be experimentally observed through time- and angle -resolved photoemission spectroscopy (tr-ARPES). Our methodology involves an in-depth investigation of the Floquet quasienergy band spectrum influenced by light with varying polarization across a range of frequencies. Particularly under the influence of circularly polarized light with a frequency comparable to the bandwidth of the system, our findings suggest a promising approach for locating monovacancy defects at either edge, a challenge that proves intricate to predict from the ARPES spectrum of ZGNRs with monovacancy defects. This has been achieved by analyzing the orientation of the Floquet edge state and the appearance of new Dirac points in the vicinity of the Fermi level. The real -world applications of these captivating characteristics underscore the importance and pertinence of our theoretical framework, paving the way for additional exploration and practical use. Our approach, employing the Floquet formalism, is not limited to monovacancy-type defects; rather, it can be expanded to encompass various types of vacancy defects.
引用
收藏
页数:13
相关论文
共 63 条
  • [1] Survival of Floquet-Bloch States in the Presence of Scattering
    Aeschlimann, Sven
    Sato, Shunsuke A.
    Krause, Razvan
    Chavez-Cervantes, Mariana
    De Giovannini, Umberto
    Huebener, Hannes
    Forti, Stiven
    Coletti, Camilla
    Hanff, Kerstin
    Rossnagel, Kai
    Rubio, Angel
    Gierz, Isabella
    [J]. NANO LETTERS, 2021, 21 (12) : 5028 - 5035
  • [2] Nanopore Creation in Graphene by Ion Beam Irradiation: Geometry, Quality, and Efficiency
    Bai, Zhitong
    Zhang, Lin
    Li, Hengyang
    Liu, Ling
    [J]. ACS APPLIED MATERIALS & INTERFACES, 2016, 8 (37) : 24803 - 24809
  • [3] Cai JM, 2014, NAT NANOTECHNOL, V9, P896, DOI [10.1038/NNANO.2014.184, 10.1038/nnano.2014.184]
  • [4] Laser-induced effects on the electronic features of graphene nanoribbons
    Calvo, Hernan L.
    Perez-Piskunow, Pablo M.
    Roche, Stephan
    Foa Torres, Luis E. F.
    [J]. APPLIED PHYSICS LETTERS, 2012, 101 (25)
  • [5] Choi D, 2024, Arxiv, DOI arXiv:2404.14392
  • [6] Merging of Dirac points and Floquet topological transitions in ac-driven graphene
    Delplace, Pierre
    Gomez-Leon, Alvaro
    Platero, Gloria
    [J]. PHYSICAL REVIEW B, 2013, 88 (24)
  • [7] Effects due to backscattering and pseudogap features in graphene nanoribbons with single vacancies
    Deretzis, I.
    Fiori, G.
    Iannaccone, G.
    La Magna, A.
    [J]. PHYSICAL REVIEW B, 2010, 81 (08)
  • [8] DYNAMIC LOCALIZATION OF A CHARGED-PARTICLE MOVING UNDER THE INFLUENCE OF AN ELECTRIC-FIELD
    DUNLAP, DH
    KENKRE, VM
    [J]. PHYSICAL REVIEW B, 1986, 34 (06): : 3625 - 3633
  • [9] Peculiar localized state at zigzag graphite edge
    Fujita, M
    Wakabayashi, K
    Nakada, K
    Kusakabe, K
    [J]. JOURNAL OF THE PHYSICAL SOCIETY OF JAPAN, 1996, 65 (07) : 1920 - 1923
  • [10] Electronic properties of graphene antidot lattices
    Furst, J. A.
    Pedersen, J. G.
    Flindt, C.
    Mortensen, N. A.
    Brandbyge, M.
    Pedersen, T. G.
    Jauho, A-P
    [J]. NEW JOURNAL OF PHYSICS, 2009, 11