• DocumentCode
    85474
  • Title

    Scalability of the Channel Capacity in Graphene-Enabled Wireless Communications to the Nanoscale

  • Author

    Llatser, Ignacio ; Cabellos-Aparicio, Albert ; Alarcon, Eduard ; Jornet, Josep Miquel ; Mestres, Albert ; Heekwan Lee ; Sole-Pareta, Josep

  • Author_Institution
    NaNoNetworking Center in Catalunya, Univ. Politec. de Catalunya, Barcelona, Spain
  • Volume
    63
  • Issue
    1
  • fYear
    2015
  • fDate
    Jan. 2015
  • Firstpage
    324
  • Lastpage
    333
  • Abstract
    Graphene is a promising material which has been proposed to build graphene plasmonic miniaturized antennas, or graphennas, which show excellent conditions for the propagation of Surface Plasmon Polariton (SPP) waves in the terahertz band. Due to their small size of just a few micrometers, graphennas allow the implementation of wireless communications among nanosystems, leading to a novel paradigm known as Graphene-enabled Wireless Communications (GWC). In this paper, an analytical framework is developed to evaluate how the channel capacity of a GWC system scales as its dimensions shrink. In particular, we study how the unique propagation of SPP waves in graphennas will impact the channel capacity. Next, we further compare these results with respect to the case when metallic antennas are used, in which these plasmonic effects do not appear. In addition, asymptotic expressions for the channel capacity are derived in the limit when the system dimensions tend to zero. In this scenario, necessary conditions to ensure the feasibility of GWC networks are found. Finally, using these conditions, new guidelines are derived to explore the scalability of various parameters, such as transmission range and transmitted power. These results may be helpful for designers of future GWC systems and networks.
  • Keywords
    graphene; metamaterial antennas; plasmonics; radiocommunication; radiowave propagation; surface plasmons; telecommunication network reliability; GWC networks; SPP wave propagation; asymptotic expressions; channel capacity scalability; graphene plasmonic miniaturized antennas; graphene-enabled wireless communications; graphennas; metallic antennas; surface plasmon polariton waves; Absorption; Antennas; Channel capacity; Graphene; Noise; Resonant frequency; Wireless communication; Scalability; channel capacity; graphene-enabled wireless communications; graphennas; nanonetworks;
  • fLanguage
    English
  • Journal_Title
    Communications, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0090-6778
  • Type

    jour

  • DOI
    10.1109/TCOMM.2014.2379271
  • Filename
    6980120