Converging type solar cell element

5973260
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Inventors

Tange, Kyoichi
Nagashima, Tomonori

Application #

947103

Filed

Oct-8-1997

Published

Oct-26-1999

Current US Class

126/698
136/246
136/249
136/252
136/255
136/256
136/259
257/448
257/452
257/457
257/459
257/461
257/463
257/466
257/E31.038
257/E31.039
257/E31.13

International Classes

H01L 031/068; H01L 031/042

Field of Search

136/255 136/256 136/259 136/246 136/249 438/71 438/98 257/61 257/448 257/452 257/457 257/459 257/461 257/463 257/466 126/698

Assignee

Toyota Jidosha Kabushiki Kaisha (JP)

Examiners

Diamond; Alan

Attorney, Agent or Firm

Finnegan, Henderson, Farabow, Garrett, & Dunner, LLP

US Patent References

4133698   Tandem junction so...
5053083   Bilevel contact solar...
5641362   Structure and fabri...

Referenced by:

View Backward References

Other References

Lammert et al., IEEE Transactions on Electron Devices, ED-24, No. 4, Apr. 1997.

Citation

Cite This Patent

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Abstract
The present invention discloses a converging type solar cell element able to restrain recombination of carriers and inflow of carriers into an embankment section and improve photoelectric conversion efficiency. A p.sup.+ diffusion layer 16 is formed on the surface of a sunlight receiving section 10 which is formed on a silicon substrate 12 comprising a p-type silicon. An energy gradient arises between the p.sup.+ diffusion layer 16 and the silicon substrate 12. Therefore, free electrons, which are minority carriers among the carriers generated in the silicon substrate 12 resulting from irradiation of sunlight to the sunlight receiving section 10, can be prevented from migrating to the surface side of the silicon substrate 12. Further, recombination of free electrons which may arise due to lattice defects of the surface can also be prevented. Still further, the p.sup.+ diffusion layer 16 may also be formed on a back surface side of the embankment section 14 which surrounds the sunlight receiving section 10. Due to operation of the aforementioned energy gradient, inflow of the free electrons, which are minority carriers, into the embankment section can be prevented.
 
Claims
What is claimed is:

1. A solar cell element for use with a converging lens, wherein the solar cell element has a crystal silicon substrate formed with a sunlight receiving section, an electrode on a back surface of the sunlight receiving section, and comprises a reinforcing embankment section around said sunlight receiving section, and a p.sup.+ diffusion layer or an n.sup.+ diffusion layer formed on at least one of a surface of said sunlight receiving section and the back surface of said embankment section, wherein either of the p.sup.+ diffusion layer or the n.sup.+ diffusion layer has an impurity concentration 10 to 100 times as much as that of the crystal silicon substrate.

2. A solar cell element for use with a converging lens, wherein the solar cell element has a crystal silicon substrate formed with a sunlight receiving section, an electrode on a back surface of the sunlight receiving section, and comprises a reinforcing embankment section around said sunlight receiving section, and a groove in a back surface of said embankment sections, said groove surrounding said sunlight receiving section.



Description
BACKGROUND OF THE INVENTION

1. Field of the Invention

The present invention relates to an improved converging type solar cell element, especially to one in which electrodes are formed on the back of a silicon substrate.

2. Description of the Related Art

Solar cells are used for various purposes. For the purpose of achieving a reduction in costs of a power generation system utilizing solar cells, various converging type solar cell modules that decrease an application area of expensive solar cells by converging sunlight using a lens have been originated. Also, various sun tracking systems have been conceived for the purposes of improving efficiency of power generation of converging type solar cell modules.

Such converging type solar cell modules use a converging type solar cell element in which solar cells are formed and electrodes for transferring current are provided. When a converging spot formed by convergence of sunlight is irradiated to a sunlight receiving section of the converging type solar cell element, free electrons and positive holes are generated as carriers in the silicon substrate. These carriers are separated by p-n junction, and the free electrons are then taken out as current from electrodes via an n-layer, with positive holes current supplied via a p-layer.
 
  This complementary photovoltaic cell has both an N+/P+ junction and a P+/N junction on the same epitaxial substrate, and so provides simultaneous photo-responsive...  In a solar cell array of terrestrial use, an improved double-sided solar cell package consisting of a photovoltaic cell having a metallized P-contact strip...