Many rocks are made of silicates. 
Silicates are a big family of things. 


Silicates are a large family of parts made of silicon and oxygen. 
Most silicates have a special shape. A silicon atom sits in the center. Four oxygen atoms sit at the corners. This shape is called a tetrahedron. 
These parts can join in many ways. Some stay alone, like the mineral olivine. Others join to make long chains. This makes minerals like pyroxene. Some parts share more oxygen atoms. They form flat sheets. Micas are part of this group. You can peel mica into thin layers.
Other silicates form a 3D framework. In this group, every corner is shared. Quartz is a common example. 
Silicates are very useful. Many are found in nature as rocks like granite. We also use them to make glass and cement. Some silicates, like waterglass, can dissolve in water. Others are very strong and do not change easily. This makes them great for building things. Even some plants can use them to grow.
Silicates are a large family of tiny parts made of silicon and oxygen. 

Most silicates work in a very specific way. A single silicon atom sits in the center of a shape. Four oxygen atoms sit at the corners of this shape. This shape is called a tetrahedron. 
These tiny parts can join together in many different patterns. Some stay alone as isolated parts, like the mineral olivine. Other parts share oxygen atoms to form long chains. This creates minerals called inosilicates, such as pyroxene. Some parts share even more oxygen to make flat sheets. This is how micas are formed. 
Scientists have studied these structures for a long time. In 1953, G. B. Alexander wrote about how certain acids react with silicates. We also know that some silicates can change under high pressure. For example, stishovite is a very dense mineral. It forms deep in the Earth's mantle. It can also form when a meteorite hits the Earth. These facts help us understand how our planet works.
Silicates connect to many things you see every day. Some silicates, like sodium metasilicate, can dissolve in water. This mixture is often called waterglass. Other types are very hard to dissolve. This makes them great for building materials. Even plants use silicates in their own lives. Some plants can dissolve silicates to help them grow. 
Silicates are a diverse family of polyatomic anions. These chemical groups consist of silicon and oxygen atoms. They often follow the general formula [SiO4]4-. This group includes many different types, such as orthosilicate, metasilicate, and pyrosilicate. The term silicate also describes salts of these anions. An example is sodium metasilicate. It can also refer to esters like tetramethyl orthosilicate. Sometimes, the name is used more broadly for any anion containing silicon. This includes hexafluorosilicate, even if it does not fit the standard formula. Silicates are essential to our world. They appear as natural minerals like granite, gravel, and garnet. Humans also use them to create artificial materials. These include Portland cement, ceramics, glass, and waterglass. 
The structure of most silicates is based on a specific shape. A single silicon atom sits at the center of an idealized tetrahedron. This shape has four corners, which are occupied by oxygen atoms. These atoms are connected to the silicon by single covalent bonds. This happens according to the octet rule. The oxygen atoms carry a negative charge. Because of this, they link to other positive cations, known as M+ cations. This Si-O-M-O-Si linkage is both strong and rigid. This molecular strength is why many silicates behave like hard rocks. 
Silicates are classified by how their anions link together. One group is called isolated silicates. These consist of individual orthosilicate anions, such as the mineral olivine. Other silicates share oxygen atoms to form more complex structures. For example, pyrosilicates are formed when silicon atoms share oxygens. Some silicates form chains, which are known as inosilicates. In single-chain silicates, tetrahedra share two oxygen atoms each. Pyroxene is a common mineral in this category. 
Other inosilicates form double chains. This occurs when tetrahedra share two or three oxygen atoms. Amphiboles are a well-known mineral group with this structure. 

The most complex structure is the framework silicate, or tectosilicate. In these, every tetrahedron shares all four of its oxygen atoms with neighbors. This creates a massive three-dimensional structure. Quartz and feldspars are famous examples of framework silicates. While the tetrahedron is common, silicon can have higher coordination numbers. In hexafluorosilicate, the silicon atom is surrounded by six fluorine atoms. This creates an octahedral arrangement. A similar structure appears in thaumasite, a rare mineral. This mineral can form in cement when it suffers a severe sulfate attack. 
Extreme environments can change silicate structures as well. At very high pressures, such as in the Earth's lower mantle, silicon changes its shape. The mineral stishovite is a dense version of silica. In stishovite, the silicon adopts a six-coordinated octahedral geometry. This can also happen during the shock of a meteorite impact. Silicates also show different levels of solubility. Silicates with alkali cations and small anions are fairly soluble in water. Sodium metasilicate can form solid hydrates when crystallized from a solution. This mixture is industrially known as waterglass. Most other silicates, like those in sheets or frameworks, have negligible solubility in water. 
Silicates are chemically useful because they are generally inert. This makes them excellent building materials. When treated with water and calcium oxides, they form Portland cement. Scientists also study how silicates react with other substances. For instance, silicate anions in a solution react with molybdate anions. This reaction produces yellow silicomolybdate complexes. A monomeric orthosilicate might react completely in just 75 seconds. In contrast, a dimeric pyrosilicate takes about 10 minutes. This chemical knowledge helps in creating catalysts like zeolites. It also helps in making geopolymers. Geopolymers are amorphous aluminosilicates. They require less energy to produce than Portland cement. Using them could help limit greenhouse gas emissions and global warming.
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