• DocumentCode
    995588
  • Title

    Two-dimensional simulation of polysilicon etching with chlorine in a high density plasma reactor

  • Author

    Lymberopoulos, Dimitris P. ; Economou, Demetre J.

  • Author_Institution
    Dept. of Chem. Eng., Houston Univ., TX, USA
  • Volume
    23
  • Issue
    4
  • fYear
    1995
  • fDate
    8/1/1995 12:00:00 AM
  • Firstpage
    573
  • Lastpage
    580
  • Abstract
    A two-dimensional fluid simulation of polysilicon etching with chlorine in an inductively-coupled high density plasma source is presented. A modular approach was used to couple in a self-consistent manner the disparate time scales of plasma and neutral species transport. This way, complex plasma chemical reactions (involving electrons, ions and neutrals) as well as surface chemistry can be included in the simulation, The power deposited into the plasma was calculated by an electromagnetics module which solves Maxwell´s equations. The power deposition was used in the electron energy module to find the electron temperature and the rate coefficients of electron-impact reactions. These were in turn used as source terms in separate neutral and charged species transport modules. By iterating among the modules, a self-consistent solution was obtained. Quantities of interest, such as power deposition, species density and flux, and etch rate and uniformity were thus calculated, As power deposition was increased, the electron density increased linearly, the plasma became less electronegative, the degree of gas dissociation increased, and the plasma potential remained constant. The radial uniformity of the Cl atom flux was better than that of the ion flux. The reactivity of the wafer as compared to that of the surrounding electrode surface significantly affected the etch uniformity, despite the low pressure of 10 mtorr
  • Keywords
    plasma density; plasma simulation; silicon; simulation; sputter etching; surface chemistry; Cl; Maxwell equations; Si; complex plasma chemical reactions; electromagnetics module; electron density; electron energy module; electron temperature; electron-impact reactions; etch rate; high density plasma reactor; inductively-coupled high density plasma source; ion flux; modular approach; neutral species transport; plasma species transport; poly-Si etching; power deposition; rate coefficients; species density; species flux; surface chemistry; two-dimensional simulation; Chemicals; Electrons; Etching; Plasma applications; Plasma chemistry; Plasma density; Plasma simulation; Plasma sources; Plasma temperature; Plasma transport processes;
  • fLanguage
    English
  • Journal_Title
    Plasma Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-3813
  • Type

    jour

  • DOI
    10.1109/27.467977
  • Filename
    467977