Allicdata Part #: | 114990247-ND |
Manufacturer Part#: |
114990247 |
Price: | $ 0.00 |
Product Category: | Sensors, Transducers |
Manufacturer: | Seeed Technology Co., Ltd |
Short Description: | 2.5W CIGS SOLAR CLOTH |
More Detail: | Amorphous Solar Cell 2.5W 3.1V |
DataSheet: | 114990247 Datasheet/PDF |
Quantity: | 1000 |
1 +: | 0.00000 |
Series: | -- |
Part Status: | Obsolete |
Power (Watts) - Max: | 2.5W |
Current @ Pmpp: | 950mA |
Voltage @ Pmpp: | 1.3V |
Type: | Amorphous |
Voltage - Open Circuit: | 3.1V |
Operating Temperature: | -- |
Package / Case: | Cells |
Size / Dimension: | 8.070" L x 3.540" W x 0.039" H (205.00mm x 90.00mm x 1.00mm) |
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Solar cells, also known as photovoltaic cells, are physical devices that can convert solar radiation into direct current electricity. They are a key component of many renewable energy systems and have revolutionized the way we think about energy production and consumption. In this article, we\'ll discuss the 114990247 application field and working principle of solar cells in detail so that you can better understand how they work and why they are so important.
Firstly, solar cells are used in a variety of applications. Most commonly, they are used to power solar-powered home systems and commercial projects such as solar farms or rooftop installations. In addition, solar cells can also be utilized for off-grid applications, such as in the production of electricity for powering remote villages, research stations, or even spacecrafts.
Solar cells rely on the photovoltaic effect to generate electricity. This effect occurs when light or radiation is absorbed by certain material, typically silicon. When this material is subjected to light, electrons become agitated and cause a reaction. This reaction releases energy in the form of electricity. The electricity generated by solar cells can be stored in a battery system or used immediately.
The efficiency of a solar cell is determined by its ability to retain energy. This energy efficiency is typically measured in a unit called the “fill factor.” This term refers to the ratio between the peak power output of the cell and the amount of current it is able to generate. A higher fill factor indicates that the solar cell is more efficient at converting energy.
In addition to its efficiency, the overall durability of the solar cell should also be taken into consideration. Solar cells are usually made of either crystalline or amorphous silicon. Crystalline silicon typically has a longer lifecycle than amorphous silicon, meaning it is more resistant to solar conditions such as high temperatures and weathering. A solar cell’s materials, construction, and design will also affect its longevity.
Lastly, the cost of solar cells is an important factor to consider when selecting them. Solar cells vary in price depending on the type of material used, the efficiency, and the number of cells they contain. Fortunately, costs have been decreasing quickly in recent years, making solar cells more affordable than ever before.
In conclusion, solar cells offer great potential for renewable energy production. Their ability to convert solar radiation into electricity makes them a viable option for both grid connected and off-grid applications. Solar cells are becoming increasingly efficient due to advances in materials and design, and they are becoming more affordable as the cost of production decreases. Whether you are looking to power your home or create a more sustainable world, solar cells have a lot to offer.
The specific data is subject to PDF, and the above content is for reference
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