1. Field of the Invention
The present invention relates to a solar battery module and a manufacturing method thereof, and more specifically, to a thin-film solar battery module utilizing electrode lines to collect current and a manufacturing method thereof.
2. Description of the Prior Art
Please refer to
However, since the areas on the solar battery module 10, which are scratched by a laser removing process and a mechanical removing process, are incapable of executing a photoelectric transducing function and are therefore named inactive areas, the aforesaid manufacturing method may reduce the photoelectric transducing efficiency of the solar battery module 10 accordingly due to dimensions of the inactive areas. Although the aforesaid problem could be solved by increasing the width of each solar battery 11 for reducing the dimensions of the inactive areas, this method may additionally increase the resistance of the electrode layer 18 so as to reduce the photoelectric transducing efficiency of the solar battery module 10. Even if a method of increasing the thickness of the electrode layer 18 is further utilized to reduce the resistance of the electrode layer 18, the transmittance of the electrode layer 18 is decreased accordingly so as to influence the overall photoelectric transducing efficiency of the solar battery module 10. Thus, how to manufacturing a solar battery module with a better photoelectric trasnducing efficiency is an important issue of the solar industry.
The present invention provides a solar battery module. The solar battery module includes a substrate, a plurality of striped metal electrode layers, a plurality of striped photoelectric transducing layers, a plurality of striped transparent electrode layers, and a plurality of electrode lines. The plurality of striped metal electrode layers is formed alternately on the substrate along a first direction. Each striped photoelectric transducing layer is formed on the corresponding striped metal electrode layer and the substrate along the first direction. Each striped transparent electrode layer is formed on the corresponding striped metal electrode layer and the corresponding striped photoelectric transducing layer along the first direction. The plurality of striped transparent electrode layers and the plurality of striped metal electrode layers are in series connection along a second direction. The plurality of electrode lines is formed alternately on each striped transparent electrode layer or between each striped photoelectric transducing layer and each striped transparent electrode layer along the second direction. A width of each electrode line is less than an interval between the striped transparent electrode layer on each striped metal electrode layer and the adjacent striped metal electrode layer.
The present invention further provides a method for manufacturing a solar battery module. The method includes forming a metal electrode layer on a substrate, removing parts of the metal electrode layer along a first direction to form a plurality of striped metal electrode layers alternately arranged on the substrate, forming a photoelectric transducing layer on each striped metal electrode layer and the substrate, removing parts of the photoelectric transducing layer along the first direction to form a plurality of striped photoelectric transducing layers alternately arranged on the each striped metal electrode layer and the substrate, so as to expose a part of each striped metal electrode layer, forming a plurality of electrode lines alternately arranged on each striped photoelectric transducing layer along a second direction, forming a transparent electrode layer on each striped photoelectric transducing layer and each electrode line, and removing parts of the transparent electrode layer, parts of the electrode lines, and a part of each striped photoelectric transducing layer along the first direction to form a plurality of striped transparent electrode layers alternately arranged on each striped photoelectric transducing layer and each electrode line and expose a part of each striped metal electrode layer, so as to make the plurality of striped metal electrode layers and the plurality of striped transparent electrode layers in series connection along the second direction.
These and other objectives of the present invention will no doubt become obvious to those of ordinary skill in the art after reading the following detailed description of the preferred embodiment that is illustrated in the various figures and drawings.
Please refer to
The solar battery module 100 further includes a plurality of striped transparent electrode layers 108 and a plurality of electrode lines 109. Each striped transparent electrode layer 108 is formed on the striped metal electrode layer 104 along the first direction D1. The electrode lines 109 are alternately formed on each striped transparent electrode layer 108 along the second direction D2. In this embodiment, the width of each electrode line 109 is preferably less than the interval between the corresponding striped transparent electrode layer 108 on each striped metal electrode layer 104 and the adjacent metal electrode layer 104, and the interval between two adjacent electrode lines 109 is less than or equal to 13 mm. Accordingly, the solar battery module 100 could be consisted of a plurality of solar batteries 101. The striped photoelectric transducing layer 106 of the solar battery 101 could transform solar energy into electrical power, and the striped metal electrode layer 104 and the striped transparent electrode layer 108 could respectively be a positive electrode and a negative electrode of the solar battery 101 for outputting the electrical power. That is, the plurality of striped metal electrode layers 104 is electrically connected to the plurality of striped transparent electrode layers 108 along the second direction D2. In other words, the plurality of solar batteries 101 is in series connection along the second direction D2 which is substantially perpendicular to the first direction D1. Furthermore, the electrical lines 109 on the striped transparent electrode layers 108 could be utilized as auxiliary electrodes for current collection. In such a manner, an outputting voltage of the solar battery module 100 could be adjusted according to actual demand and the solar battery module 100 could generate a greater current via disposal of electrode lines 109. In addition, the solar battery module 100 further includes a buffer layer 110 disposed between each striped photoelectric transducing layer 106 and each striped transparent electrode layer 108.
Generally, the substrate 102 could be a soda-lime glass. The striped metal electrode layer 104 could be made of molybdenum (Mo) material, Tantalum (Ta) material, Titanium (Ti) material, Vanadium (V) material, or Zirconium (Zr) material. The striped photoelectric transducing layer 106 could be a chalcopyrite structure, such as copper indium selenide, copper indium sulfide (CIS), copper indium gallium selenide (CIGS), or copper indium gallium selenide sulfide (CIGSS). The striped transparent electrode layer 108 could be a conductive layer made of aluminum zinc oxide (AZO) or tin-doped indium oxide (ITO) material. The buffer layer 110 could be made of cadmium sulfide (CdS), zinc sulfide (ZnS) material or indium sulfide (In2S3) and intrinsic zinc oxide (ZnO) material. The electrode line 109 could be made of conductive silver paste material or conductive aluminum paste material. The solar battery module 100 could be a thin-film solar battery module. Material of the substrate 102, the striped metal electrode layer 104, the striped photoelectric transducing layer 106, the striped transparent electrode layer 108, the buffer layer 110, and the electrode line 109 is not limited to the above-mentioned embodiment, and depends on design demand.
Please refer to
Step 300: Clean the substrate 102;
Step 302: Form a metal electrode layer 103 on the substrate 102;
Step 304: Remove parts of the metal electrode layer 103 to form the plurality of striped metal electrode layers 104 alternately arranged on the substrate 102;
Step 306: Form a photoelectric transducing layer 105 on each striped metal electrode layer 104 and the substrate 102;
Step 308: Form the buffer layer 110 on the photoelectric transducing layer 105;
Step 310: Remove parts of the photoelectric transducing layer 105 and parts of the buffer layer 110 to form the plurality of striped photoelectric transducing layers 106 alternately arranged on each striped metal electrode layer 104 and the substrate 102, so as to expose a part of each striped metal electrode layer 104;
Step 312: Form a transparent electrode layer 107 on the buffer layer 110 and each striped metal electrode layer 104;
Step 314: Form the plurality of electrode lines 109 alternately arranged on the transparent electrode layer 107 along the second direction D2;
Step 316: Remove parts of the electrode lines 109, parts of the transparent electrode layer 107, parts of the buffer layer 110 and a part of each striped photoelectric transducing layer 106 to form the plurality of striped transparent electrode layers 108 alternately arranged on the buffer layer 110 and the each striped metal electrode layer 104 and expose a part of each striped metal electrode layer 104, so as to make the plurality of striped metal electrode layers 104 and the striped transparent electrode layers 108 in series connection respectively along the second direction D2;
Step 318: End.
More detailed description for the said steps is introduced as follows. In Step 300, the substrate 102 in
Subsequently, as shown in
Next, as shown in
Thus, in the design in which the width of each solar battery 101 is increased to reduce the areas of the striped photoelectric transducing layers 106, which are needed to remove, the present invention could utilize the electrode lines 109 on the striped transparent electrode layers 108 as auxiliary electrodes for current collection, to solve the problem that the overall photoelectric transducing efficiency of the solar battery module 100 is decreased due to increase of the resistance of the striped transparent electrode layer 108. Furthermore, since there is no need to additionally increase the thickness of the striped transparent electrode layer 108, the present invention could further avoid the problem that the overall photoelectric transducing efficiency of the solar battery module 100 is influenced due to decrease of the transmittance of the striped transparent electrode layer 108.
Besides, the present invention could further improve the overall photoelectric transducing efficiency of the solar battery module 100. For example, please refer to
According to the aforesaid assumptions, if the width W of each solar battery 101 is increased to 11 mm for reducing the areas of the striped photoelectric transducing layers 106, which are needed to remove, the solar battery module 100 is consisted of fifty and four solar batteries 104 in series connection instead. In such a manner, the saved areas of the striped photoelectric transducing layers 106 due to increase of the width W of each solar battery 101 are equal to 54*0.5 mm*121 cm, and the inactive areas of the striped photoelectric transducing layers 106 covered by the electrode lines 109 are approximately equal to 54*50 μm*11 mm*110. That is, the saved areas of the striped photoelectric transducing layers 106 due to increase of the width W of each solar battery 101 is approximately ten times the inactive areas of the striped photoelectric transducing layers 106 covered by the electrode lines 109.
on the premise that the width of each electrode line 109 is less than the interval I1 between the corresponding striped transparent electrode layer 108 on each striped metal electrode layer 104 and the adjacent striped metal electrode layer 104 and number of the electrode lines 109 is appropriately controlled, even if forming of the electrode lines 109 may reduce the photoelectric transducing area of each striped photoelectric transducing layer 106, the saved areas of the striped photoelectric transducing layers 106 due to increase of the width W of each solar battery 101 could be still greater than the inactive areas of the striped photoelectric transducing layers 106 covered by the electrode lines 109. Thus, the present invention could efficiently increase the effective photoelectric transducing area of each striped photoelectric transducing layer 106, so as to improve the photoelectric transducing efficiency of the solar battery module 100.
To be noted, material and manufacturing procedures of the buffer layer 110 are not limited to the above-mentioned embodiment, meaning that Step 308 is a selectable procedure. Furthermore, Step 312 and Step 314 could be exchanged. That is, in another embodiment, the plurality of electrode lines 109 could be first formed on the buffer layer 110 along the second direction D2, and then the transparent electrode layer 107 could be formed on the buffer layer 110 and each striped metal electrode layer 104. In other words, in this embodiment, the electrode lines 109 are formed between the buffer layer 110 and the striped transparent electrode layers 108.
In the design in which the width of the solar battery is increased for reducing the area of the striped photoelectric transducing layer, which is needed to remove, the present invention utilizes the electrode lines as auxiliary electrodes for current collection, so as to solve the problem that the overall photoelectric transducing efficiency of the solar battery module is decreased due to increase of the resistance of the striped transparent electrode layer. Furthermore, since there is no need to additionally increase the thickness of the striped transparent electrode layer for reducing the resistance of the striped transparent electrode layer, the present invention could further avoid the problem that the overall photoelectric transducing efficiency of the solar battery module is influenced by decrease of transmittance of the striped transparent electrode layer.
Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.
Number | Date | Country | Kind |
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100143090 | Nov 2011 | TW | national |