• DocumentCode
    49602
  • Title

    Frequency and Time Domain Channel Models for Nanonetworks in Terahertz Band

  • Author

    Kokkoniemi, Joonas ; Lehtomaki, Janne ; Umebayashi, Kenta ; Juntti, Markku

  • Author_Institution
    Dept. of Commun. Eng., Univ. of Oulu, Oulu, Finland
  • Volume
    63
  • Issue
    2
  • fYear
    2015
  • fDate
    Feb. 2015
  • Firstpage
    678
  • Lastpage
    691
  • Abstract
    Time and frequency domain channel models are proposed for nanonetworks utilizing the terahertz band (0.1-10 THz) for wireless communication. Nanonetworks are formed by tiny nanodevices which consist of nanoscale (molecular scale) components. Channel models capturing the unique peculiarities of the THz band are needed for designing proper physical layer techniques and for accurate performance analysis. Existing channel models have included the free space path loss and the molecular absorption loss, which is significant in the THz band. This paper theoretically analyzes scattering including multiple scattering referring to a sequence of scattering events from small particles, such as aerosols. Both the frequency and the impulse responses are derived. It is shown that the small particle scattering can result into significant additional loss that needs to be taken into account with the loss depending on the density and size distribution of the particles. It is shown that multiple scattering leads to a long tail in the impulse response. As most of the physical layer proposals for nanonetworks are based on the on-off keying, the channel response to pulse waveforms is specifically considered.
  • Keywords
    electromagnetic wave absorption; electromagnetic wave scattering; frequency response; nanoelectromechanical devices; particle size; radiocommunication; radiowave propagation; time-frequency analysis; transient response; THz band; aerosols; channel response; free space path loss; frequency 0.1 THz to 10 THz; frequency response; frequency-time domain channel model; impulse response; molecular absorption loss; molecular scale components; multiple-scattering analysis; nanodevices; nanonetworks; nanoscale components; on-off keying; particle density; particle size distribution; physical layer technique; pulse waveforms; scattering event sequence; small-particle scattering; terahertz band; wireless communication; Absorption; Aerosols; Atmospheric modeling; Channel models; Nanoscale devices; Particle scattering; Continuum absorption; Rayleigh scattering; molecular absorption; multiple scattering; nanonetworks; terahertz radiation;
  • fLanguage
    English
  • Journal_Title
    Antennas and Propagation, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-926X
  • Type

    jour

  • DOI
    10.1109/TAP.2014.2373371
  • Filename
    6963344