• DocumentCode
    1078537
  • Title

    Characterization and attenuation mechanism of CMOS-compatible micromachined edge-suspended coplanar waveguides on low-resistivity silicon substrate

  • Author

    Leung, Lydia L W ; Hon, Wai-Cheong ; Zhang, Jinwen ; Chen, Kevin J.

  • Author_Institution
    Dept. of Electr. & Electron. Eng., Hong Kong Univ. of Sci. & Technol.
  • Volume
    29
  • Issue
    3
  • fYear
    2006
  • Firstpage
    496
  • Lastpage
    503
  • Abstract
    This paper presents detailed characterization of a category of edge-suspended coplanar waveguides that were fabricated on low-resistivity silicon substrates using improved CMOS-compatible micromachining techniques. The edge-suspended structure is proposed to provide reduced substrate loss and strong mechanical support at the same time. It is revealed that, at radio or microwave frequencies, the electromagnetic waves are highly concentrated along the edges of the signal line. Removing the silicon underneath the edges of the signal line, along with the silicon between the signal and ground lines, can effectively reduce the substrate coupling and loss. The edge-suspended structure has been implemented by a combination of deep reactive ion etching and anisotropic wet etching. Compared to the conventional silicon-based coplanar waveguides, which show an insertion loss of 2.5dB/mm, the loss of edge-suspended coplanar waveguides with the same dimensions is reduced to as low as 0.5 dB/mm and a much reduced attenuation per wavelength (dB/lambdag) at 39 GHz. Most importantly, the edge-suspended coplanar waveguides feature strong mechanical support provided by the silicon remaining underneath the center of the signal line. The performance of the coplanar waveguides is evaluated by high-frequency measurement and full-wave electromagnetic (EM) simulation. In addition, the resistance, inductance, conductance, capacitance (RLGC) line parameters and the propagation constant of the coplanar waveguides (CPWs) were extracted and analyzed
  • Keywords
    coplanar waveguides; elemental semiconductors; micromachining; silicon; sputter etching; 39 GHz; CMOS-compatible micromachining; anisotropic wet etching; attenuation mechanism; deep reactive ion etching; edge-suspended coplanar waveguides; full-wave electromagnetic simulation; high-frequency measurement; inductively coupled plasma; low-resistivity silicon substrate; mechanical support; microwave frequency; proximity effect; silicon-based coplanar waveguides; substrate coupling; tetramethyl ammonium hydroxide; Anisotropic magnetoresistance; Attenuation; Coplanar waveguides; Electromagnetic scattering; Electromagnetic waveguides; Micromachining; Microwave frequencies; RF signals; Silicon; Wet etching; Current crowding; edge-suspended coplanar waveguide (CPW); inductively coupled plasma deep reactive ion etching (ICP-DRIE); micromachining; proximity effect; tetramethyl ammonium hydroxide (TMAH) anisotropic silicon etching;
  • fLanguage
    English
  • Journal_Title
    Advanced Packaging, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1521-3323
  • Type

    jour

  • DOI
    10.1109/TADVP.2006.879497
  • Filename
    1667869