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Hydroformylation

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We use a special way to make things.

Hydroformylation V.2 en.png
Hydroformylation V.2 en.png
It turns gas into new stuff. This helps make soap for you. It even helps make smells for perfume. It is a big job for science. Do you like soap?

41 words

Scientists use a special process to make new things.

Hydroformylation V.2 en.png
Hydroformylation V.2 en.png
They mix gases together in a big tank. This mix needs heat and high pressure. A metal helps the gases change.
Hydroformylation Mechanism.svg
Hydroformylation Mechanism.svg
This metal acts like a helper. It makes the gases turn into liquids. These liquids help make soap for cleaning. They can also make smells for perfume. This is a very important job for science.

70 words

Scientists use a special way to make useful liquids. This way is called hydroformylation.

Hydroformylation V.2 en.png
Hydroformylation V.2 en.png
It turns a group of chemicals called alkenes into aldehydes. Aldehydes are liquids that can become many other things. For example, they can become alcohols used to make detergents. They are also used to make scents for perfumes.
Hydroformylation Mechanism.svg
Hydroformylation Mechanism.svg

To make this work, scientists use high pressure and heat. They mix alkenes with gases called carbon monoxide and hydrogen. A metal helps this change happen. This metal is a catalyst, which is a helper that speeds up a reaction. Most of the time, the metal dissolves in the liquid. This is called homogeneous catalysis.

Otto Roelen discovered this way in 1938. He found that cobalt works well as a catalyst. Today, many factories use rhodium instead. Rhodium is a metal that is much more expensive than cobalt.

HRhP3CO.png
HRhP3CO.png
Scientists study how to make the liquids straight or branched. Straight chains are often more useful for making soap. This discovery was a big win for industrial chemistry.

174 words

Hydroformylation is a very important industrial process used to create aldehydes.

Hydroformylation V.2 en.png
Hydroformylation V.2 en.png
These aldehydes are special chemicals that can be turned into many other things. For example, they can become alcohols that are used to make detergents. They are also used to make fragrances and medicines. This way of making chemicals is known as the oxo process or oxo synthesis. It is considered one of the greatest achievements in 20th-century industrial chemistry.
Hydroformylation Mechanism.svg
Hydroformylation Mechanism.svg

The way this process works involves a specific chemical change. Scientists take a chemical called an alkene and add a formyl group and a hydrogen atom to it. This happens at a carbon-carbon double bond. To make this happen, they use high pressure and heat. Usually, the pressure is between 10 and 100 atmospheres. The temperature stays between 40 and 200 degrees Celsius. A metal catalyst is needed to help the reaction move forward.

Hydroformylation Mechanism V.1.svg
Hydroformylation Mechanism V.1.svg

The history of this discovery began with a German chemist named Otto Roelen. He discovered the process in 1938 while studying the Fischer-Tropsch process. Roelen found that cobalt was an excellent catalyst for this work. Later, in the 1960s, Richard F. Heck and David Breslow explained how the cobalt catalyst actually worked. By 1968, scientists found that rhodium-based catalysts were highly active too. Since the 1970s, most industrial work has used rhodium instead of cobalt.

HRhP3CO.png
HRhP3CO.png

There are many different ways to run this process in factories. The BASF-oxo process uses cobalt and works at a pressure of about 30 MPa. The Exxon process also uses cobalt and works at temperatures between 160 and 180 degrees Celsius. Another method is the Shell process, which uses cobalt complexes with special ligands. The Union Carbide process is a low-pressure method that uses a rhodium catalyst. In 1995, the production capacity for this process reached 6.6 tons.

BiPhePhos.svg
BiPhePhos.svg

One big goal in this science is controlling the shape of the molecules. Scientists want to choose between making "normal" or "iso" products. The normal products have straight chains, while the iso products are branched. Straight chains are often more useful for making things like soap. Researchers use special parts called ligands to help favor the straight chains. This helps them get exactly the chemical they need for their work.

Hydroformylation steric effect Markovnikov.svg
Hydroformylation steric effect Markovnikov.svg

382 words

Hydroformylation, often called oxo synthesis or the oxo process, is a vital industrial chemical reaction.

Hydroformylation V.2 en.png
Hydroformylation V.2 en.png
It is used to produce aldehydes from alkenes. An aldehyde is a type of organic compound that is very useful in manufacturing. These molecules serve as building blocks for many secondary products. For example, aldehydes can be hydrogenated into alcohols. These alcohols are then used to create detergents. Hydroformylation is also essential for making specialty chemicals, including fragrances and pharmaceuticals. Because of its massive impact on manufacturing, it is considered a premier achievement of 20th-century industrial chemistry.

The chemical mechanism involves adding a formyl group and a hydrogen atom to a carbon-carbon double bond.

Hydroformylation Mechanism.svg
Hydroformylation Mechanism.svg
This reaction requires specific conditions to proceed effectively. Typically, the process uses high pressures between 10 and 100 atmospheres. The temperature is usually maintained between 40 and 200 °C. A transition metal catalyst is required to drive the reaction. In most cases, this is a homogeneous catalysis, meaning the catalyst dissolves directly into the reaction medium. One variation of the process uses formaldehyde instead of synthesis gas, which is a mixture of carbon monoxide and hydrogen.

To understand the molecular steps, we can look at the cobalt-catalyzed cycle.

Hydroformylation Mechanism V.1.svg
Hydroformylation Mechanism V.1.svg
The process begins when a molecule of carbon monoxide dissociates from cobalt tetracarbonyl hydride. This creates a 16-electron species. Next, an alkene binds to this species to form an 18-electron species. The alkene then inserts into the metal-hydrogen bond to create an alkyl tricarbonyl. A new molecule of carbon monoxide coordinates to the metal, forming an alkyl tetracarbonyl. Through migratory insertion, a 16-electron acyl species is formed. Finally, oxidative addition of hydrogen occurs, and the aldehyde is released through reductive elimination.

A major challenge in hydroformylation is controlling selectivity between "normal" and "iso" products.

Hydroformylation steric effect Markovnikov.svg
Hydroformylation steric effect Markovnikov.svg
When hydroformylating a molecule like propylene, two different isomers can form: butyraldehyde (the normal isomer) and isobutyraldehyde (the iso isomer). The normal isomer has a straight carbon chain, while the iso isomer is branched. Industrial users often prefer the straight-chain normal isomer because it is more stable and useful. Scientists manage this through steric effects and electronic effects. Bulky ligands can create steric hindrance, which pushes the reaction toward the anti-Markovnikov addition. This helps ensure the production of straight-chain aldehydes.

History shows how this field has evolved through discovery and refinement. German chemist Otto Roelen discovered the process in 1938. He was investigating the Fischer–Tropsch process when he noticed ethylene produced aldehydes and diethylketone. Roelen identified that cobalt catalysts were excellent for this reaction. In the 1960s, Richard F. Heck and David Breslow elucidated the specific cobalt-catalyzed mechanism. By 1968, researchers reported highly active rhodium-based catalysts. Since the 1970s, most industrial hydroformylation has relied on these rhodium catalysts because they are more active than cobalt.

Various industrial processes have been developed to handle different types of molecules.

BiPhePhos.svg
BiPhePhos.svg
The BASF-oxo process uses cobalt carbonyl-based catalysts for higher olefins. It operates at a pressure of about 30 MPa and temperatures between 150 and 170 °C. The Exxon process also uses cobalt for C6–C12 olefins, operating at 30 MPa and 160 to 180 °C. The Shell process uses cobalt complexes with phosphine ligands for C7–C14 olefins. The Union Carbide process, or low-pressure oxo process, uses a rhodium catalyst in thick oil to process propene at 1.8 MPa. Finally, the Ruhrchemie/Rhône-Poulène process uses a water-soluble rhodium catalyst. This modern two-phase system allows for easy separation of the product from the catalyst.

The Ruhrchemie/Rhône-Poulène process is a highly efficient example of modern chemical engineering.

Idroformilazione LPO.svg
Idroformilazione LPO.svg
It uses a rhodium catalyst with a water-soluble TPPTS ligand. This ligand makes the catalyst highly soluble in water but not in the organic product phase. The process uses propene and synthesis gas in a 1.1:1 ratio. It produces a mixture that is mostly butyraldehyde, with a ratio of 96:4 compared to isobutyraldehyde. A plant in Oberhausen reached a production capacity of 500,000 tons of butanal per year. This system is so efficient that less than 1 part per billion of rhodium is lost during the lifetime of a catalyst batch.

686 words
🖼️ Images & Media (8)
File:Hydroformylation V.2 en.png
Hydroformylation V.2 en.png
File:HRhP3CO.png
HRhP3CO.png
File:Hydroformylation Mechanism.svg
Hydroformylation Mechanism.svg
File:Hydroformylation Mechanism V.1.svg
Hydroformylation Mechanism V.1.svg
File:Hydroformylation steric effect Markovnikov.svg
Hydroformylation steric effect Markovnikov.svg
File:Hydroformulation 2-octene.png
Hydroformulation 2-octene.png
File:BiPhePhos.svg
BiPhePhos.svg
File:Idroformilazione LPO.svg
Idroformilazione LPO.svg
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