EP0104907A2

Method of making amorphous semiconductor alloys and devices using microwave energy.

Abstract

@ A process for making amorphous semiconductor alloy films (22) and devices at high deposition rates utilizes microwave energy to form a deposition plasma. The process includes the steps of providing a source of microwave energy (17), coupling the microwave energy into a substantially enclosed reaction vessel (12) containing the substrate (14) onto which the amorphous semiconductor film (22) is to be deposited, and introducing into the vessel (12) reaction gases including at least one semiconductor containing compound. The microwave energy and the reaction gases form a glow discharge plasma within the vessel (12) to deposit an amorphous semiconductor film (22) from the reaction gases onto the substrate (14). The reaction gases, for example, can include silane (SiH4). silicon tetrafluoride (SiF4), germane, or germanium tetrafluoride (GeF4). To all of the foregoing, hydrogen (H2) can also be added. Dopants can also be added to the reaction gases to form p-type or n-type alloy films. Also, band gap increasing elements can be added to widen the band gap of the alloys.

EP0104907A2, drawing sheet 1
Sheet 1 of 4

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Term ended

Projected expiry passed 23 September 2003, 23 years ago.

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41 claims: 13 independent, 28 dependent

  1. 1
    A process for depositing amorphous semiconductor alloy films onto a substrate characterized by:providing a source of microwave energy;coupling said microwave energy into a substantially enclosed reaction vessel containing said substrate;and introducing reaction gases into said vessel, said gases including at least one semiconductor containing compound, to form a glow discharge plasma within said vessel and to deposit an amorphous semiconductor film from said reaction gases onto said substrate.
  2. 9
    A process according to any one of claims 6, 7 or 8 further characterized by said reaction gases further include hydrogen (H 2 ).
  3. 13
    A process according to any one of claims 11 or 12 further characterized by said reaction gases further include hydrogen (H 2 ).
  4. 16
    A process according to any one of claims 14 or 15 further characterized by said dopant containing compound is diborane (B 2 H 6 ).
  5. 18
    A process according to any one of claims 14 or 17 further characterized by said dopant containing compound is phosphine (PH 3 ).
  6. 19
    A process according to any one of claims 1 through 18 further characterized by the step of introducing a plasma sustaining gas into said vessel with said reaction gases.
  7. 21
    A process according to any one of claims 1 through 20 further characterized by said deposited semiconductor film has a band gap and wherein at least one of said reaction gases includes a band gap adjusting element.
  8. 28
    A process according to any one of claims 1 through 27 further characterized by the step of maintaining the temperature of said substrate between about 20° Centigrade and 400" Centigrade.
  9. 29
    A process according to any one of claims 1 through 28 further characterized by the step of maintaining the pressure within said vessel at about .1 Torr or greater.
  10. 30
    A process according to any one of claims 1 through 29 further characterized by said alloy film is deposited at deposition rates of 25 Angstroms per second or greater.
  11. 31
    A process according to any one of claims 1 through 30 further characterized by the step of adjusting the power output of said microwave energy source to provide power densities between about .1 to 1 watt per cubic centimeter.
  12. 32
    A process according to any one of claims 1 through 31 further characterized by the frequency of said microwave energy is 2.45 Gigahertz.
  13. 33
    The process according to any one of claims 1 through 32 further characterized by said process forms one step in a multi-step process for forming successively deposited alloy layers of opposite (p and n) conductivity type, the n-type layer being formed by introducing into said vessel a reaction gas containing an n-type dopant element which is deposited with the deposited layer to produce an n-type layer and the p-type layer being formed by introducing into said vessel a reaction gas containing a p-type dopant element which is deposited with the deposited layer to produce a p-type layer.
  14. 35
    A process for depositing a transparent electrically insulating material onto a photovoltaic device characterized by:providing a source of microwave energy;coupling said microwave energy into a substantially enclosed reaction vessel containing said device;and introducing gases into said vessel, said gases including silicon and nitrogen or oxygen, to form a glow discharge plasma within said vessel and to deposit a transparent insulating material from said reaction gases onto said device.
  15. 38
    A process according to any one of claims 35 through 37 further characterized by the step of continuing said deposition until said transparent material is between one and fifty microns thick.
  16. 39
    A system for depositing amorphous semiconductor alloy films onto a substrate characterized by:a substantially enclosed reaction vessel (12, 24) adapted to receive said substrate (14) therein;a source of microwave energy (17);coupling means (21) coupling said microwave energy source into said vessel (12, 24);and means (46, 230) for introducing reaction gases (238, 248, 256) into said vessel, said gases including at least one semiconductor containing compound, to form a glow discharge plasma within said vessel and to deposit an amorphous semiconductor film (22) onto said substrate (14) from said reaction gases.
Independent claims16