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Acyl group

physical science Maturity 11-13

Tiny parts make up all things.

Chemical structural formulas of acyl group.svg
Chemical structural formulas of acyl group.svg
One part is a small group. It helps build big things. These parts are in our bodies. They help us live. Can you find things made of parts?

40 words

Small parts build the world.

Chemical structural formulas of acyl group.svg
Chemical structural formulas of acyl group.svg
One part is called an acyl group. It has a special shape. It has two atoms joined tightly.

These groups help make big things. They are found in our bodies. They are in many living things.

Some groups are very active. They like to change and move. Other groups stay the same.

They can join with other parts. This makes new things. It is like building with blocks.

These tiny parts are very important. They help make life work.

90 words

An acyl group is a special part of a molecule.

Chemical structural formulas of acyl group.svg
Chemical structural formulas of acyl group.svg
It is made by taking an acid and removing some parts. This group has a carbon atom. That carbon is joined to an oxygen atom by a double bond. It is also joined to another group of atoms.
Acetyl-chloride skeletal.svg
Acetyl-chloride skeletal.svg

These groups are very busy in nature. They are found in all living things. For example, they help make fats and proteins in our bodies.

Some acyl groups are very reactive. This means they change easily when they meet other parts. Acid chlorides are the most reactive. They change very fast.

Reactivity of Carboxylic Acid Derivatives Towards Nucleophiles.png
Reactivity of Carboxylic Acid Derivatives Towards Nucleophiles.png

Other groups are much calmer. Amides are a good example. They do not change as easily. This happens because of a thing called resonance. Resonance is when the parts of a molecule share power in a stable way. This makes the bond hard to break.

Resonance Forms of an Amide.png
Resonance Forms of an Amide.png

When these groups change, they follow a set of steps. A new part attacks the carbon. This makes a temporary shape. Then, an old part leaves. This leaves the new part in its place.

197 words

An acyl group is a special piece of a molecule.

Chemical structural formulas of acyl group.svg
Chemical structural formulas of acyl group.svg
It is made when you take an acid and remove one or more hydroxyl groups. This group always has a carbon atom joined to an oxygen atom by a double bond. The carbon is also attached to another group, like a hydrogen or a larger chain of atoms.
Acetyl-chloride skeletal.svg
Acetyl-chloride skeletal.svg
Chemists use these groups to build many different types of organic compounds. They are very important because they act as building blocks for much larger structures.

These groups change in a specific way called nucleophilic acyl substitution. First, a nucleophile attacks the central carbon atom. This creates a temporary shape called a tetrahedral intermediate.

General Scheme for Acid Catalyzed Nucleophilic Acyl Substitution.png
General Scheme for Acid Catalyzed Nucleophilic Acyl Substitution.png
Next, the molecule collapses back into its original shape. During this step, an old part called a leaving group is pushed out. The new part then takes its place. This two-step process can happen faster if the environment is acidic or basic.

Not all acyl groups react at the same speed. Some are very eager to change, while others are quite calm.

Reactivity of Carboxylic Acid Derivatives Towards Nucleophiles.png
Reactivity of Carboxylic Acid Derivatives Towards Nucleophiles.png
Acid chlorides are the most reactive type. Anhydrides are next, followed by esters and amides. Amides are very stable because of resonance. Resonance is when parts of a molecule share energy in a way that makes the bonds stronger.
Resonance Forms of an Amide.png
Resonance Forms of an Amide.png
This makes it much harder for the amide bond to break.

Scientists have studied these groups for a long time to understand how they work. For example, they know that the ability of a leaving group to depart depends on its acidity. A better leaving group is usually a weak base. In a study by Wade in 2010, different reaction rates were noted. The difference in speed between acid chlorides and amides can be as large as a factor of 10 to the 13th power. This shows just how much these groups can vary.

Acyl groups are part of the world you see every day. They are found in all major types of biochemical molecules in living things. In our bodies, they help form fats and proteins.

Acetamide-2D-skeletal.png
Acetamide-2D-skeletal.png
For instance, acetyl-CoA is a very common version used in metabolism. You can even see their names in biology. When talking about amino acids like glycine, the name changes to glycyl. This shows how these tiny chemical pieces build the big world around us.

412 words

An acyl group is a specific arrangement of atoms within a molecule.

Chemical structural formulas of acyl group.svg
Chemical structural formulas of acyl group.svg
It is a moiety, or a part of a larger structure, created by removing one or more hydroxyl groups from an oxoacid. In organic chemistry, these groups are usually derived from carboxylic acids. The group always contains a carbon atom double-bonded to an oxygen atom. This central part is called a carbonyl group. The carbon is also attached to either a hydrogen atom or an organyl group, which is a larger chain of atoms.
Acetyl-chloride skeletal.svg
Acetyl-chloride skeletal.svg
When the organyl group is an alkyl group, the IUPAC name for the acyl group is alkanoyl.

Acyl groups undergo a specific chemical process called nucleophilic acyl substitution. This process happens in two main steps: addition and elimination. First, a nucleophile attacks the carbonyl carbon. This attack creates a temporary, four-sided shape called a tetrahedral intermediate.

General Scheme for Acid Catalyzed Nucleophilic Acyl Substitution.png
General Scheme for Acid Catalyzed Nucleophilic Acyl Substitution.png
Following this, the intermediate collapses. As it collapses, it recreates the carbon-oxygen double bond. This action forces a substituent, known as a leaving group, to be ejected from the molecule. The nucleophile then takes the place of that leaving group. This entire sequence is a reversible equilibrium process.

There are five primary types of acyl derivatives, and they differ greatly in how they react. Acid halides are the most reactive towards nucleophiles. Anhydrides follow them in reactivity. Esters are less reactive than anhydrides, and amides are the least reactive of the group. Carboxylate ions are essentially unreactive because they lack a leaving group.

Reactivity of Carboxylic Acid Derivatives Towards Nucleophiles.png
Reactivity of Carboxylic Acid Derivatives Towards Nucleophiles.png
The difference in reaction rates is massive. For example, the rate difference between acid chlorides and amides can be as high as a factor of 10^13.

Reactivity is largely determined by the ability of the leaving group to depart. This ability is closely related to the acidity of the species. A weak base makes a better leaving group than a strong base. A species with a strong conjugate acid, like hydrochloric acid, is a better leaving group than one with a weak conjugate acid, like acetic acid. Therefore, a chloride ion is a better leaving group than an acetate ion. This is why acid chlorides react much more quickly than other derivatives.

Resonance also plays a major role in how these molecules behave. Resonance occurs when electrons are shared across multiple atoms, stabilizing the structure. Amides show significant resonance, meaning the bond between the carbon and nitrogen has significant double-bond character.

Resonance Forms of an Amide.png
Resonance Forms of an Amide.png
This creates a high energy barrier for rotation. The energy needed to rotate an amide bond is 75–85 kJ/mol. This is much higher than the 12 kJ/mol required to rotate a standard C–C bond in ethane. Because forming a tetrahedral intermediate destroys this stable resonance, amides are very slow to react.

Acyl groups appear in many different chemical forms, including ions and radicals. Acylium ions are cations with the formula RCO+. These ions have a linear geometry and show triple-bond character.

Acylium.svg
Acylium.svg
They are important reactive intermediates in reactions like the Friedel–Crafts acylation. Acyl radicals can also form, often through the abstraction of hydrogen atoms. However, these radicals often undergo rapid decarbonylation. On the other end of the spectrum, acyl anions are usually very unstable. They react quickly with neutral aldehydes to form acyloin dimers.

In the field of biochemistry, acyl groups are essential components of life. They are found in almost all major categories of biochemical molecules. Acyl-CoAs are derivatives formed during fatty acid metabolism. Acetyl-CoA is a very common acyl donor in biosynthetic transformations. You can also see the influence of these groups in the naming of biological molecules. The names of amino acid acyl groups are formed by changing the suffix to -yl. For instance, glycine becomes glycyl, and lysine becomes lysyl. Similarly, ribonucleoside monophosphates like AMP become adenylyl. These small groups are the fundamental building blocks for complex biological systems.

657 words
🖼️ Images & Media (15)
File:Chemical structural formulas of acyl group.svg
Chemical structural formulas of acyl group.svg
File:Reactivity of Carboxylic Acid Derivatives Towards Nucleophiles.png
Reactivity of Carboxylic Acid Derivatives...
File:Acetyl-chloride_skeletal.svg
Acetyl-chloride_skeletal.svg
File:Chloride.png
Chloride.png
File:Acetic anhydride2DACS.svg
Acetic anhydride2DACS.svg
File:Acetate anion.png
Acetate anion.png
File:Ethyl-acetate-2D-skeletal.svg
Ethyl-acetate-2D-skeletal.svg
File:Ethoxide.png
Ethoxide.png
File:Acetamide-2D-skeletal.png
Acetamide-2D-skeletal.png
File:Amide anion.png
Amide anion.png
File:Resonance Forms of an Amide.png
Resonance Forms of an Amide.png
File:Acylium.svg
Acylium.svg

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