One-dimensional confinement and width-dependent bandgap formation in epitaxial graphene nanoribbons

被引:41
|
作者
Karakachian, Hrag [1 ]
Nguyen, T. T. Nhung [2 ]
Aprojanz, Johannes [2 ,3 ]
Zakharov, Alexei A. [4 ]
Yakimova, Rositsa [5 ]
Rosenzweig, Philipp [1 ]
Polley, Craig M. [4 ]
Balasubramanian, Thiagarajan
Tegenkamp, Christoph [2 ]
Power, Stephen R. [6 ]
Starke, Ulrich [1 ]
机构
[1] Max Planck Inst Festkorperforsch, Heisenbergstr 1, D-70569 Stuttgart, Germany
[2] Tech Univ Chemnitz, Inst Phys, Reichenhainer Str 70, D-09126 Chemnitz, Germany
[3] Leibniz Univ Hannover, Inst Festkorperphys, Appelstr 2, D-030167 Hannover, Germany
[4] Lund Univ, MAX Lab 4, Fotongatan 2, S-22484 Lund, Sweden
[5] Linkoping Univ, IFM, S-58183 Linkoping, Sweden
[6] Trinity Coll Dublin, Sch Phys, Dublin 2, Ireland
关键词
GROWTH;
D O I
10.1038/s41467-020-19051-x
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The ability to define an off state in logic electronics is the key ingredient that is impossible to fulfill using a conventional pristine graphene layer, due to the absence of an electronic bandgap. For years, this property has been the missing element for incorporating graphene into next-generation field effect transistors. In this work, we grow high-quality armchair graphene nanoribbons on the sidewalls of 6H-SiC mesa structures. Angle-resolved photoelectron spectroscopy (ARPES) and scanning tunneling spectroscopy measurements reveal the development of a width-dependent semiconducting gap driven by quantum confinement effects. Furthermore, ARPES demonstrates an ideal one-dimensional electronic behavior that is realized in a graphene-based environment, consisting of well-resolved subbands, dispersing and non-dispersing along and across the ribbons respectively. Our experimental findings, coupled with theoretical tight-binding calculations, set the grounds for a deeper exploration of quantum confinement phenomena and may open intriguing avenues for new low-power electronics. Here, the authors investigate armchair graphene nanoribbons by angle-resolved photoelectron spectroscopy, and show the development of a width-dependent semiconducting gap driven by quantum confinement effects, and an ideal one-dimensional electronic behaviour.
引用
收藏
页数:8
相关论文
共 50 条
  • [41] Atomistic Insight into the Formation of Metal-Graphene One-Dimensional Contacts
    Kretz, Bernhard
    Pedersen, Christian S.
    Stradi, Daniele
    Brandbyge, Mads
    Garcia-Lekue, Aran
    [J]. PHYSICAL REVIEW APPLIED, 2018, 10 (02):
  • [42] Anomalous spontaneous capillary flow of water through graphene nanoslits: Channel width-dependent density
    Wang, Ting-Ya
    Chang, Hsin-Yu
    He, Guan-Yu
    Tsao, Heng-Kwong
    Sheng, Yu-Jane
    [J]. JOURNAL OF MOLECULAR LIQUIDS, 2022, 352
  • [43] Island distance in one-dimensional epitaxial growth
    H. Kallabis
    P.L. Krapivsky
    D.E. Wolf
    [J]. The European Physical Journal B - Condensed Matter and Complex Systems, 1998, 5 : 801 - 804
  • [44] Island distance in one-dimensional epitaxial growth
    Kallabis, H
    Krapivsky, PL
    Wolf, DE
    [J]. EUROPEAN PHYSICAL JOURNAL B, 1998, 5 (03): : 801 - 804
  • [45] One-dimensional photonic bandgap optical limiter design
    Soon, BY
    Haus, JW
    Scalora, M
    Sibilia, C
    Eloe, P
    [J]. PHYSICS AND SIMULATION OF OPTOELECTRONIC DEVICES XI, 2003, 4986 : 142 - 152
  • [46] Surface effect on the bandgap of BN one-dimensional nanostructures
    Li, S.
    Yang, G. W.
    [J]. JOURNAL OF APPLIED PHYSICS, 2011, 110 (03)
  • [47] Birefringence in one-dimensional finite photonic bandgap structure
    Mandatori, A
    Sibilia, C
    Centini, M
    D'Aguanno, G
    Bertolotti, M
    Scalora, M
    Bloemer, M
    Bowden, CM
    [J]. JOURNAL OF THE OPTICAL SOCIETY OF AMERICA B-OPTICAL PHYSICS, 2003, 20 (03) : 504 - 513
  • [48] Gain enhancement in one-dimensional crystal with photonic bandgap
    Czuma, P
    Szczepanski, P
    [J]. LASER TECHNOLOGY VII: PROGRESS IN LASERS, 2003, 5230 : 17 - 21
  • [49] One-dimensional nonperiodic photonic bandgap microstrip structure
    Fesenko, VI
    Kublik, AV
    Naboka, AN
    [J]. LFNM 2003: LASER AND FIBER-OPTICAL NETWORKS MODELING, PROCEEDINGS, 2003, : 185 - 185
  • [50] One-dimensional photonic bandgap structure in abalone shell
    LI Bo1
    2. Department of Materials Science and Engineering
    3. Department of Electronic Engineering
    [J]. Science Bulletin, 2005, (14) : 123 - 125