Method of manufacturing solar battery

4562637
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Inventors

Kushima, Tadao
Soga, Tasao
Suzuki, Takaya

Application #

622584

Filed

Jun-20-1984

Published

Jan-7-1986

Current US Class

029/854
029/860
029/861
136/244
136/251
219/121.64
228/180.1
228/180.21
438/61
438/67
438/80

International Classes

H01L 031/18

Field of Search

29/572 29/577 136/244 136/251 136/245 228/180 219/121

Assignee

Hitachi, Ltd. (Tokyo, JP)

Referenced by:

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Citation

Cite This Patent

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Abstract
A method of manufacturing a solar battery by serially connecting a plurality of solar battery elements arranged spaced from each other. A pair of flexible films are used to sandwich the arrangement of the solar battery elements, and each of the flexible films has a plurality of conductive members formed thereon at positions respectively corresponding to the solar battery elements. However, each conductive member has one end portion extended beyond the surface of the corresponding solar battery element in the direction of the alignment of the solar battery elements. Thus, when the pair of flexible films are disposed to sandwich the solar battery elements, the extended end portion of the conductive member on the side of the light receiving surface of one solar battery element is positioned in the space between adjacent solar battery elements opposite the end portion of the conductive member on the side of the back surface of the next solar battery element. By welding both end portions of the conductive members by, for example, a laser beam, the adjacent solar battery elements are successively connected in series.
 
Claims
We claim:

1. In a method of manufacturing a solar battery in which a plurality of solar battery elements each having a light receiving surface and a back surface respectively formed with electrode patterns are arranged with a space therebetween, and the light receiving surface of each solar battery element is serially connected by means of a conductive member to the back surface of the preceding solar battery element which is located adjacent to said each solar battery element, the improvement comprising the steps of:

preparing a pair of flexible members, each of the flexible members having a plurality of conductive members formed along the direction of arrangement of said solar battery elements and spaced with substantially the same spacing as the solar battery element arrangement, each of said conductive members having a pattern wider in the direction of the solar battery element arrangement than the light receiving and back surfaces of the respective solar battery element;



Description
BACKGROUND OF THE INVENTION

1. Field of the Invention

The present invention relates to a method of manufacturing a solar battery, and more particularly to a method of manufacturing a solar battery which is suitable for sequentially and serially connecting a plurality of solar battery elements by joining a light receiving surface of one solar battery element to a back surface of the next solar battery element by an electrically conductive member.

2. Description of the Prior Art

In the prior art, a method of serially connecting a plurality of solar battery elements is illustrated in FIGS. 1A and 1B. In this method as shown in FIGS. 1A and 1B, the front and back surfaces of each solar battery element 10a, 11b are provided with a eutectic solder deposition layer, or a preliminary eutectic solder layer formed by deposition, or a paste solder layer formed by printing or the like. A conductor lead 16 of an electrically conductive member having a eutectic solder deposition layer or the like formed on the surface beforehand and bent stepwisely at the center thereof is disposed to bridge the light receiving surface 12 of a solar battery element 10a and the back surface 14 of another solar battery element 10b. Then, in a furnace of the resistance heating type and in an atmosphere of H.sub.2, N.sub.2, Ar gas or the like, an electrode pattern 18 of the solar battery element 10a and the conductor lead 16 are welded to each other, and the conductor lead 16 and an electrode pattern 20 of the solar battery element 10b are also welded and thus the connection of the solar battery elements 10a and 10b is completed. In this method, it takes several seconds to several tens of minutes to melt the solder (melting point above 183.degree. C.) contained in the solder deposition layer or the like formed on the surface of the conductor lead 16. Further, since the conductor lead 16 is a single integral member of stepwisely bent structure, automatic feeding of the conductor lead 16 is difficult and thus this method was not suitable for mass production. Furthermore, since the material of the conductor lead 16 is a Fe-Ni alloy (Fe-42Ni), although the thermal expansion coefficient is small, the rigidity is high, and thus there was a problem in that the stress of the conductor lead 16 imparted to the electrode pattern 18 of the light receiving surface 12 after the connection was large and peelings and cracks were caused.
 
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