Well, the answer is very simple, wire saw. So far you have a huge single crystal silicon ingot, but how can you make solar panels of it? Using the same concept, the liquified SiHCl3 is heated then cooled to remove impurities with higher and lower boiling points such as Calcium and Aluminum.Īfter distillation, the liquefied SiHCl3 is moved to a different insulated reactor with a hot rod, then mixed with Hydrogen gas and vaporized again at a temperature of up to 2732 degrees Fahrenheit.ĭue to the heat and the presence of H2 gas, the Cl atoms will dissolve leaving around 99.9999% pure silicon behind. The gas is then cooled and liquefied for distillation.ĭistillation is the process of evaporating then condensing the liquid to get rid of unwanted impurities.įor instance, you can boil seawater (salted water), then condense the vapor to get pure water, as the salt will remain at the bottom of the pot. The next step is to purify this metallurgical silicon using the Siemens process.įirst, we expose the powder of metallurgical silicon Si in a reactor with HCl at elevated temperatures resulting in SiHCl3 gas. Therefore, further purification needs to be done. To make metallurgical silicon, special ovens are used to melt SiO2 and Carbon at temperatures of over 2,552 degrees Fahrenheit leaving behind 98% to 99% pure silicon.Īlthough the high purity of metallurgical silicon, it’s not pure enough to be used in PV panels. The first step in manufacturing monocrystalline cells is to extract pure silicon from quartzite to make metallurgical silicon. The main ingredient that makes monocrystalline solar panels is silicon also known as Silica sand, Quartzite, or SiO2. The manufacture of monocrystalline solar cells contains 8 main steps and, in this section, we will quickly go through each one of them. In 1918, the Polish scientist Jan Czochralski discovered a brilliant method for monocrystalline silicon production and called it the Czochralski Process, and later in 1941, the first cell was constructed.
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