This is a tiny gas. 
This is a clear gas. 

Cyclobutane is a clear gas. 

Some tiny life forms use this shape. Bacteria use it to build a wall. This wall is very dense.
Sunlight can also change these shapes. UV light can join two parts of a cell together. This makes something called a photodimer.
Cyclobutane is a special type of organic compound. It is a colorless gas in its natural state. You can also find it as a liquid gas. This molecule is made of four carbon atoms. These atoms join together to form a ring. While the ring itself is not very useful for big industries, its parts are important. Scientists use its shapes to study biology and biotechnology. 
The ring has a very interesting way it works. The bonds between the carbon atoms are under a lot of strain. This means the atoms are pushed together tightly. Because of this strain, the ring is not flat. Instead, it folds into a shape called a puckered conformation. Some people call this the butterfly shape. One carbon atom sits at a 25 degree angle from the others. This fold helps reduce some of the tension in the ring. 
People first learned how to make this gas in 1907. Two scientists named James Bruce and Richard Willstätter created it. They used a process called hydrogenation. They worked with a substance called cyclobutene and used nickel to help. Today, there are many ways to make these rings in a lab. Some methods use UV light to join molecules together. Other ways use special metals to change different chemicals into rings. 
Nature uses these ring shapes in amazing ways. Some bacteria use a group of five rings called pentacycloanammoxic acid. This creates a very dense wall or membrane. This wall protects the bacteria from toxic things like hydrazine. Sunlight can also create these rings in our own cells. UV light can cause a reaction called a photodimer. This happens when two parts of a cell bond together. Most living things use enzymes to fix this damage.
These tiny shapes can affect our health and medicine. A disease called Xeroderma pigmentosum happens when the body cannot fix UV damage. This can lead to skin tumors and discoloration. On a more helpful note, scientists use these shapes for medicine. A popular anticancer drug is called carboplatin. This medicine is made from a cyclobutane derivative. It is helpful to see how tiny atoms shape our world.
Cyclobutane is a specific type of organic compound known as a cycloalkane. It is defined by the chemical formula (CH2)4. In its natural state, cyclobutane is a colorless gas. It can also be found commercially as a liquefied gas. While the simple cyclobutane molecule has no major commercial or biological use, its derivatives are very important. These derivatives are molecules that contain the cyclobutane structure. They play vital roles in the fields of biology and biotechnology. 
The structure of this molecule is defined by intense internal tension. The bond angles between the four carbon atoms are significantly strained. This strain means the bonds have lower energies than related hydrocarbons. For example, butane and cyclohexane are unstrained and more stable. Because of this high energy, cyclobutane becomes unstable above 500 °C. The four carbon atoms do not sit on a flat plane. Instead, the ring adopts a folded or "puckered" conformation. This shape is often called a "butterfly" conformation. 
This puckered shape is a clever way for the molecule to exist. In this conformation, the C-C-C angle is less than 90°. One specific carbon atom sits at a 25° angle from the plane of the other three. By folding this way, the molecule reduces some of its eclipsing interactions. These interactions are the stresses caused by atoms being too close together. The molecule can also switch between different equivalent puckered conformations. This movement allows the ring to manage its inherent structural strain.
Nature uses these strained rings in surprising biological ways. One example is pentacycloanammoxic acid, which is a type of ladderane. A ladderane is made of five fused cyclobutane units. This compound has an estimated strain three times higher than a single cyclobutane ring. It is found in bacteria that perform the anammox process. These bacteria use the molecule to form a very dense membrane. This tight membrane protects the organism from toxic substances like hydrazine and hydroxylamine. These chemicals are part of the process that turns nitrite ions and ammonia into nitrogen and water.
Light can also cause cyclobutane structures to form in living cells. This happens through a photochemical reaction called a photodimer. This occurs when the C=C double bonds of pyrimidines couple together. The most common version is the thymine dimer, or T-T dimer.
When these repair systems fail, it can lead to serious health issues. Xeroderma pigmentosum is a genetic disease that affects this repair process. People with this condition cannot properly fix the damage caused by UV light. This failure can result in skin discoloration and the development of tumors. However, cyclobutane structures can also be used for good in medicine. A well-known anticancer drug called carboplatin is used to treat patients. This drug is derived from cyclobutane-1,1-dicarboxylic acid.
Scientists have known how to create these molecules for over a century. Cyclobutane was first synthesized in 1907. Two scientists, James Bruce and Richard Willstätter, achieved this discovery. They created it by hydrogenating cyclobutene in the presence of nickel. Today, chemists use many different methods to prepare cyclobutanes in laboratories. Some methods involve the dimerization of alkenes using UV light irradiation. In the Norrish-Yang reaction, irradiated carbonyls cyclize to form a cyclobutanol. Other methods include ketenes attacking electron-rich alkenes to create cyclobutanones. Finally, 1,4-dihalobutanes can be converted into cyclobutanes through dehalogenation with reducing metals.
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