Some tiny things cannot turn. 
Some tiny things cannot turn. 
Some tiny molecules have a special trait. They cannot spin easily. This trait is called atropisomerism. 

Some molecules have a very special way of being shaped. Most tiny molecules can spin easily around their center bonds. However, some molecules have large parts that get in the way. These large parts bump into each other and stop the spinning. This trait is called atropisomerism, which comes from a word meaning "not to be turned."
How does this stopping happen? It works because of something called steric strain. This happens when bulky parts of the molecule try to occupy the same space. 
People have been studying these shapes for a long time. In 1922, George Christie and James Kenner first found them. They saw this in a specific type of molecule called a diacid. Later, in 1933, a German biochemist named Richard Kuhn used the term atropisomer. He created the name for a book by Karl Freudenberg. 
There are many different kinds of these molecules in the world. Many examples are biaryls, which are made of two rings joined together. 
Atropisomers are very important for making new medicines. For instance, the drug methaqualone is an example of this phenomenon. Another drug, telenzepine, has two different shapes that act differently. One shape is 500 times more active than the other in certain tests.
Atropisomers are a specific type of stereoisomer. They arise because of hindered rotation around a single bond. In most molecules, parts can spin freely around their central bonds. However, in atropisomers, bulky groups create a barrier to this movement. This barrier is created by steric strain, which occurs when parts of the molecule bump into each other.
The mechanism of atropisomerism depends on energy barriers. The stability of an individual atropisomer is provided by repulsive interactions. These interactions prevent the subunits from spinning past one another. Both the steric bulk of the groups and the rigidity of the central bond contribute to this effect. 
Atropisomers are categorized based on their chemical structure and symmetry. When the substituents on the molecule are achiral, the conformers are called enantiomers. These are specifically known as atropoenantiomers and exhibit axial chirality. If the substituents are not achiral, the molecules are called diastereomers, or atropodiastereomers. 
The history of this discovery began in the early 20th century. In 1922, George Christie and James Kenner first experimentally detected atropisomerism. They observed it in a tetra-substituted biphenyl diacid. Later, in 1933, the German biochemist Richard Kuhn coined the term "atropisomer." He used the name for a theoretical concept in Karl Freudenberg's volume, *Stereochemie*. The name comes from the Greek meaning "not to be turned." 
Scientists use several methods to create and separate these molecules. Axially chiral biaryl compounds can be prepared through coupling reactions. These include the Ullmann coupling, the Suzuki–Miyaura reaction, or palladium-catalyzed arylation. 
Atropisomers play a massive role in modern medicine and chemistry. Certain biaryl compounds, such as BINAP, QUINAP, and BINOL, are used as chiral ligands. 
Understanding these shapes is critical for drug design. The drug methaqualone is a classical example of a molecule exhibiting atropisomerism. Another example is telenzepine, which has a central thienobenzodiazepine ring. The (+)-isomer of telenzepine is about 500-fold more active than the (–)-isomer at certain receptors.
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