Log in Sign up
Back to Discover
⚛️

Peroxide

physical science Maturity 11-13

Some things have two oxygen atoms.

Peroxide group v.2.png
Peroxide group v.2.png
They stay joined together. These parts are in many things. One kind is in a liquid. It is used in many ways. It is very interesting. Do you know this liquid?

38 words

Some things have two oxygen atoms.

Peroxide group v.2.png
Peroxide group v.2.png
These atoms stay joined together. This makes a special group. This group is in many things. One kind is a liquid. People call it peroxide.
Peroxide group v.2.png
Peroxide group v.2.png
Other kinds use metals. Some kinds use parts of acids. The group changes with other parts. It can act in many ways. It is very interesting to learn about.

62 words

Peroxides are a group of molecules. They have a special part. This part has two oxygen atoms joined together.

Peroxide group v.2.png
Peroxide group v.2.png
Scientists call this the peroxy group. In this group, the oxygen atoms share a single covalent bond. A covalent bond is a way atoms stay joined. Each oxygen atom has a negative charge. This charge can change when other elements are added.

There are many kinds of peroxides. The most common one is hydrogen peroxide. People often just call it "peroxide."

Peroxide group v.2.png
Peroxide group v.2.png
Some peroxides use metals. For example, barium peroxide and zinc peroxide use metals. Other peroxides are organic. This means they contain carbon and hydrogen. One example is tert-butylhydroperoxide. There are also peroxy acids. These are made from acids. One example is peracetic acid. A man named Thomas Thomson used the term in 1804. He used it for a compound with much oxygen. The properties of a peroxide change with its parts.

153 words

Peroxides are a special group of molecules. They are important because they have a unique structure. This structure features a peroxy group. This group contains two oxygen atoms joined together. These oxygen atoms are connected by a single covalent bond. A covalent bond is a way atoms stay linked. This linkage is a common polyatomic ion. It exists in many different molecules.

Peroxide group v.2.png
Peroxide group v.2.png

Let us look at how these molecules work. The two oxygen atoms share a single covalent bond. This bond connects the two main atoms together. Each oxygen atom has an oxidation state of negative one. This happens because five of its valence electrons stay in the outer shell. One more electron is used in the covalent bond. This means each atom has seven valence electrons. This arrangement gives the oxygens a negative charge.

Peroxide group v.2.png
Peroxide group v.2.png

People have studied these molecules for a long time. A scientist named Thomas Thomson introduced the term. He did this in the year 1804. He used the name for a specific type of compound. This compound had as much oxygen as possible. It was the oxide with the largest amount of oxygen. The way we name these groups can sometimes vary. This is because of how they were first discovered.

Peroxide group v.2.png
Peroxide group v.2.png

There are many different kinds of peroxides. Hydrogen peroxide is the most common form. Most people just call it "peroxide." Other types include peroxy acids like peracetic acid. You might also find peroxymonosulfuric acid. Some peroxides are made with metals. Examples include barium peroxide, sodium peroxide, and zinc peroxide. There are also organic peroxides. One example is tert-butylhydroperoxide.

Peroxide group v.2.png
Peroxide group v.2.png

All peroxides change based on what they are joined to. The properties and structure change when other elements are added. This charge is affected by those extra elements. You can think of the peroxy group like a building block. You can add different pieces to change the whole shape. Main group peroxides use a main group element for their linkage. Organic peroxides use a hydrocarbon moiety. This makes the world of chemistry very diverse.

Peroxide group v.2.png
Peroxide group v.2.png

342 words

Peroxides are a specific group of chemical molecules. They are defined by a unique structural feature called the peroxide group. This group consists of two oxygen atoms linked together. These atoms are joined by a single covalent bond. A covalent bond is a type of connection where atoms share electrons. This linkage acts as a common polyatomic ion. This means the group can exist within many different types of molecules.

Peroxide group v.2.png
Peroxide group v.2.png

To understand how peroxides work, we must look at their atomic structure. The central feature is the oxygen–oxygen covalent single bond. This bond connects the two main atoms of the group. Each oxygen atom in this arrangement has an oxidation state of negative one. This state occurs because of how the electrons are distributed. Five of the oxygen's valence electrons remain in its outermost orbital shell. One electron is used to form the covalent bond. This leaves each oxygen atom with the equivalent of seven valence electrons. This specific arrangement gives the oxygen atoms a negative charge.

Peroxide group v.2.png
Peroxide group v.2.png

The properties of a peroxide change depending on its environment. The negative charge of the oxygen atoms is affected by other elements. When different elements are added to the group, the structure changes. The specific characteristics of the molecule depend on these added groups. This makes peroxides a very diverse category in chemistry. You can change the behavior of the molecule by changing what it is bonded to.

Peroxide group v.2.png
Peroxide group v.2.png

Scientists categorize peroxides into several distinct classes. The most famous and common form is hydrogen peroxide. People often refer to it simply as "peroxide." Another major class is peroxy acids. These are peroxy derivatives of familiar acids. Examples include peracetic acid and peroxymonosulfuric acid. Some salts also belong to this group, such as potassium peroxydisulfate.

Peroxide group v.2.png
Peroxide group v.2.png

Other types of peroxides are defined by the elements they contain. Main group peroxides use a main group element for their linkage. Metal peroxides are another important category. Examples of metal peroxides include barium peroxide, sodium peroxide, and zinc peroxide. There are also organic peroxides. These contain hydrocarbon moieties, which are portions of a complete molecule. One specific example of an organic peroxide is tert-butylhydroperoxide.

Peroxide group v.2.png
Peroxide group v.2.png

The history of the word peroxide is quite interesting. The term was introduced by a scientist named Thomas Thomson. He introduced the name in the year 1804. At that time, he used it for a specific kind of compound. He described it as an oxide with the greatest quantity of oxygen. He meant a compound combined with as much oxygen as possible. Because of how these were first discovered, naming them can be tricky. It was originally believed that the group was monatomic. This historical belief created some discrepancies in how we use nomenclature today.

Peroxide group v.2.png
Peroxide group v.2.png

Today, the linkage between the oxygen molecules is called a peroxy group. You might also hear it called a peroxo group or a peroxyl group. Some people also refer to it as a peroxy linkage. While naming rules can vary, the core structure remains the same. The peroxy group is a fundamental building block in many chemical systems. It allows for a wide variety of complex molecules to form. This structural versatility is why peroxides are found in so many different chemical forms.

539 words
🖼️ Images & Media (1)
File:Peroxide_group_v.2.png
Peroxide_group_v.2.png
Up Next
⚛️
Hydrogen peroxide
Physical Science
More to explore

What is Nepedia?

A free, ad-free encyclopedia for children. Every article is written at five reading levels, so the same page works for a five-year-old and a fifteen-year-old — use the level switcher above to see this one change. No account needed to read.