Electro-optically assisted bonding

4294602
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Inventors

Horne, William E.

Application #

064994

Filed

Aug-9-1979

Published

Oct-13-1981

Current US Class

065/40
065/59.1
065/59.3
065/DIG4
136/256
156/99
204/164
438/64

International Classes

C03C 027/00

Field of Search

65/40 65/59 204/192

Assignee

The Boeing Company (Seattle, WA)

Examiners

Kellogg; Arthur D.

Attorney, Agent or Firm

Garrison; David L., Gullette; Robert L.

US Patent References

3981230   Apparatus for ther...

Referenced by:

View Backward References

Other References

"Field Assisted Glass-Metal Sealing", Journal of Applied Physics, vol. 40, No. 10, 9/69, pp. 3946-3949, G. Wallis & D. Pomerantz. "Integrally Bonded Covers for Silicon Solar Cells", Proceeding of the 11th IEEE Photovoltaic Specialists Conf., 1975, pp. 169-170, A. Kirkpatrick.

Citation

Cite This Patent

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Abstract
A method of bonding a cover glass to a semiconductor substrate having conductors thereon. The cover glass and the semiconductor substrate are placed in a relatively high voltage field and heated to induce ion drift in the glass and improved conductivity in the substrate. Additional localized heating softens the cover glass in the vicinity of the conductors permitting the cover glass to flow around the conductors and to be drawn into contact and bonded with the substrate.
 
Claims
I claim:

1. A method of integrally bonding a cover glass to a surface of a semicondutor cell having conductors thereon, comprising the steps of:

providing a semiconductor cell and a cover glass having a desired ratio of energy absorptions at a certain wavelength;

juxtaposing the cover glass and the semiconductor cell, the conductors spacing apart the cover glass and the semiconductor cell;

applying a predetermined electrostatically-bonding high voltage between the outer surfaces of the juxtaposed cover glass and the semiconductor cell;

pre-heating the juxtaposed cover glass and the semiconductor cell to a first temperature sufficient to promote ion drift in the cover glass and to establish an electrostatic field between the cover glass and the cell; and



Description
BACKGROUND OF THE INVENTION

1. Field of the Invention

This invention relates generally to electrostatic bonding of a cover glass to semiconductor cells. In particular, this invention relates to electrostatic bonding techniques which are combined with localized heating to provide bonding of cover glasses to semiconductor cells having metallic conductors placed on the surfaces thereof.

2. Description of the Prior Art

Cover glasses have been bonded to the surface of silicon solar cells in a variety of ways, including electrostatically induced bonding. Recent improvements in silicon solar cells have produced very thin, fragile plates of silicon material which are not readily adaptable to being sealed by the electrostatic bonding techniques of the prior art.

A typical silicon solar cell is about twelve mils thick and two centimeters square. The twelve mil thick substrate of a given material is appropriately doped to produce a pn junction. Photons create hole-electron pairs in the pn junction region and the resultant field causes current flow in the cell. The junction is formed in a thin surface zone of approximately 0.5 microns on the surface of the silicon substrate. Current is removed from the solar cells by means of a grid of very thin metallic conductors deposited on the surface of the cell. The rear surface of the cell has a metallic coating deposited thereupon. The grid-like structure of the metallic conductors permits maximum light energy to impinge upon the solar cell while still providing a means for conducting current out of the cell.
 
  Polyanilines are provided that are soluble and that form crystaline solids upon precipitation. The solid polyanilines are electrically conductive, soluble,...  In a photovoltaic cell which comprises a first electrode, a first layer of cadmium sulfide, a second layer of cuprous sulfide forming a barrier junction...