Log in Sign up
Back to Discover
⚛️

Sodium hydride

physical science Maturity 9-11

This is a special salt. It looks grey. It can help make new things in a lab. It can even hold gas for cars. We must be very careful with it. It can catch fire. Have you ever seen a lab?

41 words

This is a special salt. It looks grey in real life. Scientists use it in labs. It helps them make new things. It can even hold gas for cars. We must be very careful with it. It can catch fire in the air. It also reacts with water. This makes a gas that burns easily. To keep it safe, people mix it with oil. This makes it easier to touch and move. It is a very useful tool for science.

82 words

Sodium hydride is a special salt. It is made of sodium and hydrogen. It is often grey in color. This salt has a crystal structure like rock salt. In this shape, each part is surrounded by six others.

Scientists use it to make new things. It is a strong base. A base is a substance that can change other chemicals. It can even pull parts away from weak acids. This helps make many different types of molecules. It can also act as a reducing agent. This means it helps change how atoms are joined together.

Some people think it could store hydrogen gas. This could help power cars. To get the gas, you would crush small pellets in water.

We must handle this salt with great care. It can catch fire in the air. It also reacts fast with water. This reaction lets out hydrogen gas. This gas burns very easily. To keep it safe, shops often sell it in mineral oil. The oil makes it safer to touch and weigh. This makes the salt easier to use in a lab.

181 words

Sodium hydride is a special chemical compound. It is known by the formula NaH. This substance is a salt-like hydride. It is made of sodium and hydrogen ions. This makes it very different from other hydrides like methane or ammonia. Most hydrides are made of molecules. Sodium hydride is an ionic material instead. It does not dissolve in any solvents. The only way to dissolve it is in molten sodium metal.

This material has a very specific shape. It uses a pattern called the NaCl crystal structure. This is the same pattern found in rock salt. In this shape, every ion is surrounded by six others. This creates a shape called an octahedral geometry. The particles are very close together. In fact, it is about 40% denser than pure sodium. Most samples look grey even though the material is colorless.

Making this compound requires a careful process. Workers mix molten sodium into mineral oil. They also add hydrogen gas at atmospheric pressure. The mixture must be stirred very fast. It is mixed at about 8000 rpm. This reaction happens very quickly at 150 degrees Celsius. The result is a suspension of NaH in oil. This oil helps make the material easier to use.

Scientists use sodium hydride for many big jobs. It is a very strong base. It can act as a superbase to change weak acids. It helps build molecules through many types of condensation reactions. These include the Claisen and Dieckmann condensations. It can also act as a reducing agent. It can change boron trifluoride into diborane. It can even help change imines into amines.

We must treat this substance with great care. It can catch fire all by itself in the air. It also reacts very strongly with water. This reaction releases hydrogen gas. Hydrogen is a gas that burns very easily. It also creates sodium hydroxide, which is a corrosive base. Because of this, most NaH is sold in mineral oil. This makes it safer to weigh and handle.

338 words

Sodium hydride is a chemical compound represented by the empirical formula NaH. It is classified as an alkali metal hydride. This substance is a saline hydride, which means it is salt-like in nature. It consists of sodium ions and hydride ions. This structure makes it very different from molecular hydrides like methane or ammonia. Instead of forming discrete molecules, it is an ionic material. Because of this ionic nature, it is insoluble in all solvents. The only exception is molten sodium metal, which can dissolve it.

The physical structure of NaH is quite specific. It adopts the NaCl crystal structure, which is the same pattern found in rock salt. In this motif, each ion is surrounded by six centers. This arrangement is known as an octahedral geometry. The ions in the crystal are very tightly packed. In fact, NaH is approximately 40% denser than pure sodium. While the compound is technically colorless, most physical samples appear grey to the eye.

A very unusual version of this compound is called "inverse sodium hydride." This version contains Na+ and H- ions in a different way. It is an alkalide, which is a type of chemical compound. This version has a much higher energy content than ordinary sodium hydride. This happens because two electrons are moved from hydrogen to sodium. Scientists have found that a derivative of this can exist with a molecule called adamanzane. This molecule shields the ions from interacting with the alkalide. Without this shield, the reaction would not be as stable.

Industrial production of sodium hydride requires precise conditions. To prepare it, manufacturers introduce molten sodium into mineral oil. They add hydrogen gas at atmospheric pressure during this process. The mixture is then stirred very vigorously at about 8000 rpm. This reaction becomes especially rapid when the temperature reaches 150 degrees Celsius. The final product is a suspension of NaH within the mineral oil. This oil suspension is often used directly for other tasks, such as making diborane.

In the field of organic synthesis, NaH is a highly valued tool. It functions as a strong base with a wide scope of utility. Because it is a superbase, it can deprotonate many weak Brønsted acids. This means it can remove a proton from an acid to create a sodium derivative. It works easily on substrates with O-H, N-H, or S-H bonds. This includes substances like alcohols, phenols, pyrazoles, and thiols. It is also effective at deprotonating carbon acids, such as 1,3-dicarbonyls. These derivatives can then undergo alkylation.

Sodium hydride also drives several important chemical transformations. It promotes condensation reactions of carbonyl compounds. These include the Dieckmann, Stobbe, Darzens, and Claisen condensations. Additionally, NaH can act as a reducing agent for certain main group compounds. For example, it reacts with boron trifluoride to produce diborane and sodium fluoride. It can also reduce Si-Si and S-S bonds in disilanes and disulfides. When mixed with an alkali metal iodide, it can reduce imines to amines and amides to aldehydes.

Despite its uses, sodium hydride requires strict safety protocols. It is a combustible material that can ignite spontaneously in the air. It reacts vigorously when it touches water or humid air. This reaction releases hydrogen gas, which is highly flammable. It also produces sodium hydroxide, which is a corrosive base. To make handling safer, NaH is often sold as a 60% mixture in mineral oil. This dispersion is much easier to weigh and handle safely. However, chemists must still use air-free techniques to prevent dangerous fires or explosions.

590 words
Up Next
⚛️
Sodium borohydride
Physical Science
More to explore

🔬 Go deeper

More advanced topics to explore

🪜 Step back

Simpler topics to build understanding

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.