This present application is based on, and claims priority of Taiwan Patent Application No 101135229, filed on Sep. 26, 2012, the disclosure of which is hereby incorporated by reference herein in its entirety.
The technical field relates to a method for forming patterned doping regions, and more particularly to a method for forming patterned doping regions of a solar cell.
In recent years, due to rise of environmental protection and global warming, the green industry has been greatly developed. Solar cells are a major technology in the green industry. Methods for developing a high efficiency, low-cost solar cell have become an important focus of research. Solar cells can be disposed on buildings, such as houses, and movable apparatus, such as cars; indoors, or on portable electric devices, to convert light into electrical power.
The conventional art develops solar cells with selective emitters. Emitters with a low concentration between electrodes can reduce the recombination of carriers at the surface of the cell, while emitters with a higher doping concentration under electrodes can provide good contact. Therefore, compared to conventional solar cells with emitting structures that have a constant doping concentration, solar cells with selective emitters have higher open loop voltage (Voc) and short-circuit current (Isc) and thus higher photoelectric conversion efficiency.
In 2010, Sunpower Company developed a solar cell with a back electrode having a cross-finger shape and an efficiency of 24.2%. Although this solar cell has a good conversion efficiency, it has a very high manufacturing cost due to its requiring many high-temperature and photolithography processes.
Both the solar cells with selective emitters and the solar cells with a back electrode having a cross-finger shape employ patterned doping regions to increase conversion efficiency. However, the process for forming patterned doping regions is more complicated and requires a highly accurate process, such as lithography, thus increasing the cost of the solar cell.
An embodiment of the present disclosure provides a method for forming doping regions, comprising providing a substrate, forming a first-type doping material on the substrate, forming a second-type doping material on the substrate, wherein the first-type doping material is separated from the second-type doping material by a gap, forming a covering layer to cover the substrate, the first-type doping material, and the second-type doping material, and performing a thermal diffusion process to diffuse the first-type doping material and the second-type doping material into the substrate.
Another embodiment of the disclosure provides a method for forming doping regions, comprising providing a substrate, forming a doping material on the substrate, forming at least one patterned covering layer on a portion of a surface of the doping material, wherein the portion of the doping material is covered by at least one patterned covering layer, and another portion of the doping material not covered by the patterned covering layer is exposed, and performing a thermal diffusion process to diffuse the doping material into the substrate, forming a first doping region in a portion of the substrate underlying the patterned covering layer and forming a second doping region in a portion of the substrate not covered by the patterned covering layer, wherein the doping concentration of the first doping region is greater than the doping concentration of the second doping region.
The disclosure can be more fully understood by reading the subsequent detailed description and examples with references made to the accompanying drawings, wherein,
In the following detailed description, for purposes of explanation, numerous specific details are set forth in order to provide a through understanding of the disclosed embodiments. It will be apparent, however, that one or more embodiments may be practiced without these specific details. In other instances, well-known structures and devices are schematically shown in order to simplify the drawing.
An embodiment of the disclosure forms p-type or n-type patterned doping regions using a coating of phosphoric acid or boric acid. The embodiment uses screen printing to take off photolithography and further uses a coating layer to avoid the spread of coated phosphoric acid or boric acid. An embodiment of the disclosure can use a single thermal diffusing step to get a p-type pattern region or an n-type pattern region.
A method for forming a structure comprising p-type regions and n-type regions is illustrated
Referring to
In an embodiment in which the second-type doping material 112 is n-type doping material, the second-type doping material 112 can be a phosphide, arsenide or telluride. Furthermore, the second-type doping material 112 can be phosphorous glass, and can be formed by the following steps. Phosphorous acid is coated on the second mask 110, such as a screen, and is filled into the second opening 111. Next, a thermal process is performed to convert the liquid-state phosphoric acid to a colloidal-state or a solid-state compound, such as a colloidal-state or a solid-state phosphide. The thermal process can have a temperature of 200° C.˜600° C. and can further have a temperature of 250° C.˜350° C. In an embodiment in which the second-type doping material 112 is p-type doping material, the second-type doping material 112 can be a boride, aluminide or gallide. Furthermore, the second-type doping material 112 can be boron glass, and can be formed by the following steps. Boric acid is coated on the second mask 110, such as a screen, and is filled into the second opening 111. Next, a thermal process is performed to convert the liquid-state boric acid to a colloidal-state or a solid-state compound, such as a colloidal-state or a solid-state boride. The thermal process can have a temperature of 200° C.˜600° C. and can further have a temperature of 250° C.˜350° C.
Next, referring to
Referring to
Next, referring to
A method for forming a structure comprising p-type or n-type patterned doping regions is illustrated
Thereafter, referring to
Accordingly, with the formation of the patterned covering layer 206 on the doping material 204, the embodiment can form the first doping region 208 and the second doping region 210 with a different doping concentration using a single thermal diffusion process. The relations between condition of thermal diffusion and resistance of the first doping region 208 and the second doping region 210 are illustrated in accordance with
While the disclosure has been described by way of example and in terms of the embodiments, it is to be understood that the disclosure is not limited to the disclosed embodiments. It is intended to cover various modifications and similar arrangements (as would be apparent to those skilled in the art). Therefore, the scope of the appended claims should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements.
Number | Date | Country | Kind |
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101135229 A | Sep 2012 | TW | national |
Number | Name | Date | Kind |
---|---|---|---|
3730787 | Murphy et al. | May 1973 | A |
3808060 | Hays et al. | Apr 1974 | A |
4003770 | Janowiecki et al. | Jan 1977 | A |
4006046 | Parekh | Feb 1977 | A |
4102715 | Kambara et al. | Jul 1978 | A |
4320251 | Narasimhan et al. | Mar 1982 | A |
4394674 | Sakuma et al. | Jul 1983 | A |
4478879 | Baraona et al. | Oct 1984 | A |
5527389 | Rosenblum et al. | Jun 1996 | A |
5543356 | Murakami et al. | Aug 1996 | A |
6274402 | Verlinden et al. | Aug 2001 | B1 |
7339110 | Mulligan et al. | Mar 2008 | B1 |
7388147 | Mulligan et al. | Jun 2008 | B2 |
7615393 | Shah et al. | Nov 2009 | B1 |
7700400 | Onishi et al. | Apr 2010 | B2 |
7820475 | De Ceuster et al. | Oct 2010 | B2 |
7846823 | Funakoshi | Dec 2010 | B2 |
7883343 | Mulligan et al. | Feb 2011 | B1 |
7897867 | Mulligan et al. | Mar 2011 | B1 |
7923368 | Terry et al. | Apr 2011 | B2 |
7951637 | Weidman et al. | May 2011 | B2 |
8053343 | Huh et al. | Nov 2011 | B2 |
20050233558 | Yamamoto et al. | Oct 2005 | A1 |
20070278534 | Bui et al. | Dec 2007 | A1 |
20100230604 | Bui et al. | Sep 2010 | A1 |
20100258524 | Remiat et al. | Oct 2010 | A1 |
20110139226 | Ha | Jun 2011 | A1 |
20120021557 | Kim et al. | Jan 2012 | A1 |
Number | Date | Country |
---|---|---|
2154479 | May 1973 | FR |
Entry |
---|
Official Action issued on Dec. 3, 2013, by the European Patent Office in corresponding Application No. 13162155.9. |
Official Action issued on Feb. 21, 2014, by the European Patent Office in corresponding Application No. 13162155.9. |
D.S. Kim et al., “Development of a Phosphorus Spary Diffusion System for Low-cost Silicon Solar Cells”, Journal of The Electrochemical Society, 2006, vol. 153, Issue 7, pp. A1391-A1396. |
Jiun-Hua Guo et al., “Laser-Grooved Backside Contact Solar Cells With 680-mV Open-Circuit Voltage”, IEEE Transactions on Electron Devices, vol. 51, No. 12, Dec. 2004. |
Peter Hacke et al., “A screen-printed interdigitated back contact cell using a boron-source diffusion barrier”, Solar Engergy Materials & Solar Cells, 2005, 88, pp. 119-127. |
Nicholas Bateman et al., “High quality ion implanted boron emitters in an interdigitated back contact solar cell with 20% efficiency”, Energy Procedia, 2011, pp. 509-514. |
Peter J. Cousins et al., “Generation 3: Improved Performance at Low Cost”, Sunpower Corporation, 3939 North First St, San Jose 95134, California, USA, 2010 IEEE pp. 275-278. |
Robert Bock et al., “Back-juncition back-contact n-type silicon solar cells with screen-printed aluminum-alloyed emitter”, Applied Physics Letters 96, pp. 263507-1 to 263507-3, Jun. 28, 2010. |
A. Das et al., “Boron Diffusion with Boric Acid for High Efficiency Silicon Solar Cells”, Journal of The electrochemical Society, 2010, vol. 15.7, Issue 6, pp. H684-H687. |
R. Woehl et al., “19.7 Efficient All-Screen-Printed Back-Contact Back-Junction Silicon Solar Cell With Aluminum-Alloyed Emitter”, IEEE Electron Device Letters, vol. 32, No. 3, Mar. 2011, pp. 345-347. |
Number | Date | Country | |
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20140087549 A1 | Mar 2014 | US |