Log in Sign up
Back to Discover
🌍

Methane clathrate

earth science Maturity 11-13 climate
This article covers sensitive topics: climate. Parents can manage visibility in Parental Controls.

Some ice can burn.

Burning hydrate inlay US Office Naval Research.jpg
Burning hydrate inlay US Office Naval Research.jpg
This ice has gas inside it. It stays deep in the cold ocean. It looks like regular ice. It is very neat to see. Do you like ice?
Gas Hydrate Crystals.jpg
Gas Hydrate Crystals.jpg

40 words

Some ice can burn.

Burning hydrate inlay US Office Naval Research.jpg
Burning hydrate inlay US Office Naval Research.jpg
This ice holds gas inside. It looks like regular ice.
Gas Hydrate Crystals.jpg
Gas Hydrate Crystals.jpg

It forms in the deep, cold ocean. It needs high pressure to stay solid. This happens when gas meets water. The water builds a tiny cage. The gas stays trapped inside.

This ice can be found in the sea floor. It is also in cold lands like Alaska. Scientists study it to learn about our world. It is a very special kind of ice.

86 words

Methane clathrate is a special kind of solid.

Burning hydrate inlay US Office Naval Research.jpg
Burning hydrate inlay US Office Naval Research.jpg
It is also called methane hydrate or fire ice. This is because it can burn.
Gas Hydrate Crystals.jpg
Gas Hydrate Crystals.jpg

Methane gas gets trapped inside water. The water forms a crystal structure. This structure looks like tiny cages. The gas stays inside these cages.

These cages form under specific conditions. There must be very low temperatures. There must also be high pressure. This happens deep under the ocean. It can also happen in cold places like Alaska.

Gas hydrates 1996.svg
Gas hydrates 1996.svg

Scientists find these in the sea floor. They can find them in deep ice cores too. These ice cores go back 800,000 years. They help us study how our world changes.

Some people thought this ice could change our climate quickly. They thought it might melt and let out much gas. Now, new research shows it reacts very slowly to warmth. It is not seen as a major danger to our temperature this century. Methane can also stay underwater. This helps tiny sea life grow.

179 words

Methane clathrate is a very strange and interesting solid.

Burning hydrate inlay US Office Naval Research.jpg
Burning hydrate inlay US Office Naval Research.jpg
You might hear it called methane hydrate or even "fire ice." This name comes from the fact that the methane inside can burn. It is a solid compound where methane gas is trapped inside a crystal structure of water.
Gas Hydrate Crystals.jpg
Gas Hydrate Crystals.jpg
This structure looks a lot like regular ice, but it holds much more gas. Because it is so dense with gas, one cubic meter of this solid can release about 160 cubic meters of gas. This makes it a very important substance to study in our world.

To understand how it works, you have to look at the tiny cages inside.

Gashydrat mit Struktur.jpg
Gashydrat mit Struktur.jpg
Water molecules link together to form a lattice, which is a repeating pattern. This pattern creates tiny cages that hold methane molecules inside them. For this to happen, two things must be true at the same time. There must be very low temperatures and very high pressure.
Methane Hydrate phase diagram.jpg
Methane Hydrate phase diagram.jpg
This usually occurs deep under the ocean floor or in very cold polar regions. When the pressure drops or the temperature rises, the cages break and the gas escapes.

Scientists have been learning about these crystals for many years.

Gas hydrates 1996.svg
Gas hydrates 1996.svg
People first discovered methane hydrates in Russia during the 1960s. Later, researchers found them in deep Antarctic ice cores at the Vostok Station and EPICA Dome C. These ice cores are amazing because they hold a history of our atmosphere from 800,000 years ago. By studying the clathrates in the ice, scientists can see how much methane was in the air long ago. This helps us understand how the Earth's climate has changed over a very long time.

There are many different places where you can find these deposits. They are often found in the ocean at depths greater than 300 meters. They can also be found in fresh water, like in Lake Baikal in Siberia. In places like Alaska and Siberia, they sit in layers of sandstone and siltstone. Some deposits are found near the surface of the seafloor, while others are much deeper. These deposits can appear as huge masses, small nodules, or even long veins in the rocks.

Understanding methane clathrate helps us understand the balance of our planet.

Gashydrat im Sediment.JPG
Gashydrat im Sediment.JPG
In the past, some people had a theory called the "clathrate gun hypothesis." They worried that warming oceans would cause a massive, fast release of gas that would change the climate. However, current research shows that these hydrates react very slowly to warming. Most of the methane stays dissolved in the water instead of hitting the air. This actually helps tiny sea life, like phytoplankton, by providing food in the water.

460 words

Methane clathrate is a unique solid compound that traps gas within a frozen lattice.

Gas Hydrate Crystals.jpg
Gas Hydrate Crystals.jpg
It is also known by several names, including methane hydrate, hydromethane, and "fire ice." This nickname comes from the fact that the trapped methane can burn when released.
Burning hydrate inlay US Office Naval Research.jpg
Burning hydrate inlay US Office Naval Research.jpg
Chemically, it is a clathrate hydrate, which means a gas is physically trapped inside a crystal structure made of water. This structure is very different from regular ice. While regular ice is just frozen water, methane clathrate holds a large amount of gas inside its framework. One cubic meter of this solid can release about 160 cubic meters of methane gas. This incredible density makes it a subject of great interest for scientists studying energy and the environment.

The mechanism that forms these solids relies on specific physical conditions.

Methane Hydrate phase diagram.jpg
Methane Hydrate phase diagram.jpg
Methane hydrate forms when methane gas and hydrogen-bonded water meet under high pressure and low temperatures. This usually happens in the deep ocean or in very cold polar regions. The water molecules link together to form a crystal lattice, creating tiny cages. In a common "structure-I" hydrate, these cages are shaped like dodecahedrons and tetradecahedrons. Each unit cell contains 46 water molecules and eight methane molecules. These cages act like a molecular prison, holding the methane in place. If the pressure drops or the temperature rises, the lattice breaks down through a process called dissociation. When this happens, the solid turns back into water and gas.

Scientists categorize these deposits into different types based on their location and origin.

Gas hydrates 1996.svg
Gas hydrates 1996.svg
Most oceanic deposits are dominated by structure I clathrates. These are often found deep in the sediment and are created by microbes. These microbes, specifically methanogenic archaea, break down organic matter in environments without oxygen. Another type of deposit is found closer to the sediment surface. These often contain longer-chain hydrocarbons and follow a structure II clathrate pattern. These are thought to come from the thermal decomposition of organic matter deep underground. Some deposits might even be a mixture of both microbial and thermal sources.

The history of studying these compounds has changed our understanding of Earth's past. Researchers first discovered methane hydrates in Russia during the 1960s. Later, scientists studied ice cores from the Antarctic Vostok Station and EPICA Dome C. These ice cores contain methane clathrates that date back 800,000 years. By analyzing these samples, researchers can reconstruct the history of atmospheric methane concentrations. This data is a primary source for studying global warming. It helps scientists see how the atmosphere and the oceans have interacted over hundreds of thousands of years.

Methane clathrates exist within a specific zone in the Earth's crust.

Gashydrat im Sediment.JPG
Gashydrat im Sediment.JPG
They are restricted to the shallow lithosphere, generally at depths of less than 2,000 meters. In the ocean, they are usually found in the gas hydrate stability zone (GHSZ). This zone is typically between 300 and 500 meters thick within the sediment. For a hydrate to be stable, the water must be cold, often around 2 °C at depths greater than 300 meters. In polar regions, they can also form in continental sedimentary rocks where surface temperatures stay below 0 °C. They can even be found in deep freshwater lakes, such as Lake Baikal in Siberia.

There was once a significant scientific concern known as the clathrate gun hypothesis. This theory suggested that rising temperatures could cause a catastrophic, sudden melting of undersea hydrates. Such an event would release massive amounts of methane, rapidly accelerating global warming. However, current research has updated this view. Scientists now believe that hydrates react very slowly to warming. Most of the methane released during dissociation stays dissolved in the seawater. This dissolved methane can actually support life by encouraging methanotroph communities. These communities help support phytoplankton, which are tiny organisms at the base of the food web.

Today, the role of methane clathrates in the climate system is viewed with more nuance. The IPCC Sixth Assessment Report states that there will be no detectable impact on global temperatures from this mechanism during this century. While a more substantial response might occur over several millennia, the immediate threat is considered low. Despite this, the sheer scale of these reservoirs remains a topic of study. The amount of methane trapped in these structures is vast, even if the exact size of the global reservoir is still being estimated. Understanding these complex systems helps us better predict how our planet responds to change.

750 words
🖼️ Images & Media (8)
File:Burning hydrate inlay US Office Naval Research.jpg
Burning hydrate inlay US Office Naval Research.jpg
File:Gas_Hydrate_Crystals.jpg
Gas_Hydrate_Crystals.jpg
File:Methane Hydrate phase diagram.jpg
Methane Hydrate phase diagram.jpg
File:Gas hydrates 1996.svg
Gas hydrates 1996.svg
File:Gashydrat im Sediment.JPG
Gashydrat im Sediment.JPG
File:Gashydrat mit Struktur.jpg
Gashydrat mit Struktur.jpg
File:Gas_hydrate_under_carbonate_rock.jpg
Gas_hydrate_under_carbonate_rock.jpg
File:BP oil containment domes.jpg
BP oil containment domes.jpg
Up Next
🌍
Natural gas
Earth 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.