Some things are not gas or liquid. 
Some things are not just gas or liquid. They are both at once. 
This happens when things are very hot. It also happens when they are squeezed hard. This special state is called a supercritical fluid.
These fluids can act like a gas. They can move through tiny holes. They can also act like a liquid. This helps them dissolve things.
People use this to make coffee. They use it to take caffeine out. It is a safe way to work.
You can find these fluids in space. They are in the air of Venus. They are also in giant planets like Jupiter. It is a very busy state of matter.
Most things are either a gas or a liquid. But some things can be both at once. This happens at a special point called the critical point. When a substance is past this point, it becomes a supercritical fluid.
A supercritical fluid is very strange. It can move through tiny holes like a gas. Yet, it can also dissolve things like a liquid. This makes it a great tool for science. People use carbon dioxide to take caffeine out of coffee beans. They also use it to get oils from plants. 
You can change how the fluid works. If you change the heat or the pressure, you change its density. This lets scientists fine-tune how it acts.
These fluids are not just in labs. They are in space, too. The air on Venus is a supercritical fluid. The giant planets Jupiter and Saturn also have them. On Earth, we find them in the deep ocean. They come out of vents called black smokers. These vents can spray out very hot water.
Most substances are either a liquid or a gas. However, a supercritical fluid is something quite different. This state happens when a substance reaches a specific temperature and pressure called its critical point. Once it passes this point, the distinction between liquid and gas disappears. The substance becomes a single, unique phase. It is not quite a gas and not quite a liquid. Instead, it has properties of both at the same time.
Working with these fluids is very interesting because they are so flexible. A supercritical fluid can move through tiny, porous holes just like a gas. At the same time, it can dissolve solids or liquids just like a liquid. This makes it much better at moving through materials than a regular gas. You can also "fine-tune" how the fluid behaves. By making small changes to the pressure or temperature, you change its density. This allows scientists to control how much the fluid can dissolve.
Humans first discovered this strange state in 1822. A man named Baron Charles Cagniard de la Tour found it during experiments. He used a sealed cannon filled with different fluids. He listened to the sound of a flint ball rolling inside the barrel. He noticed a change in the sound at a certain temperature. This told him that the liquid and gas had become one. Today, we use this discovery in many ways. We use supercritical carbon dioxide to remove caffeine from coffee beans. 
There are many different substances that can become supercritical fluids. Carbon dioxide is one of the most common tools used in labs. It has a critical temperature of 304.1 K and a critical pressure of 7.38 MPa. Water can also become a supercritical fluid, but it needs much more heat. Water has a critical temperature of 647.096 K and a pressure of 22.064 MPa. Other substances like methane, ethane, and propane also have their own critical points. Even nitrogen can become a supercritical fluid if the pressure is high enough.
These fluids are not just found in science labs. They exist in the natural world and even in deep space. On Earth, supercritical water can be found near black smokers. These are hydrothermal vents on the ocean floor that spray hot fluids. In our solar system, the atmosphere of Venus is a supercritical fluid. This is because the surface is very hot and has high pressure. The giant planets Jupiter and Saturn also have these fluids in their atmospheres. Even the ice giants Uranus and Neptune might have them too. 
A supercritical fluid (SCF) is a unique state of matter. It occurs when a substance is held at a temperature and pressure above its critical point. At this specific stage, the distinct boundaries between liquid and gas phases disappear. The substance no longer exists as a separate liquid and gas, but as a single, continuous phase. This state is not a solid, as the pressure required to compress an SCF into a solid is much higher than the pressure needed to reach the supercritical state. This unique phase is vital to many scientific and industrial processes because it combines the best traits of both gases and liquids.
The mechanism of a supercritical fluid relies on its hybrid properties. An SCF can effuse through porous solids just like a gas. This allows it to move through tiny gaps much faster than a liquid could. However, it also possesses the ability to dissolve materials like a liquid. This makes it much more effective at mass transfer than a standard gas. Because there is no liquid/gas phase boundary, there is also no surface tension. This allows the fluid to penetrate materials with ease. Scientists can "fine-tune" the fluid by making small adjustments to pressure or temperature. These small changes result in large changes in density, which alters how the fluid behaves.
Different substances have different critical points, which define when they become supercritical. For example, carbon dioxide (CO2) has a critical temperature of 304.1 K and a critical pressure of 7.38 MPa. Water (H2O) requires much more extreme conditions, with a critical temperature of 647.096 K and a pressure of 22.064 MPa. Other common substances include methane (CH4), which has a critical temperature of 190.4 K, and ethane (C2H6), with a critical temperature of 305.3 K. Even nitrogen can become a supercritical fluid if the pressure is high enough. Nitrogen is often called a permanent gas because it remains well above its critical temperature at room temperature. To liquefy it, one must cool it below its critical temperature or use massive gravitational pressure.

The history of this discovery began in 1822 with Baron Charles Cagniard de la Tour. He conducted experiments using a sealed cannon barrel filled with various fluids. He listened to the sound of a flint ball rolling inside the barrel. He noticed a specific temperature where the sound changed, indicating a discontinuity. This change revealed the critical point where liquid and gas phases merge. Since then, researchers have used advanced experimental tools to study the dynamic properties of these fluids. This work has led to massive progress in understanding how these substances behave under extreme conditions.
Supercritical fluids are highly significant in industrial applications, particularly in extraction. Supercritical fluid extraction is often faster than liquid extraction due to low viscosity and high diffusivity. Carbon dioxide is the most common solvent used in these processes. It is used on a large scale for the decaffeination of green coffee beans. It is also used to extract hops for beer production and essential oils from plants. One major advantage is that the extracted material is easily recovered. By simply reducing the pressure, the solvent undergoes a phase transition back into a gas. This leaves little to no solvent residue behind.

These fluids also occur naturally in extreme environments. On Earth, supercritical water can be found at hydrothermal vents known as "black smokers." These are large chimneys on the ocean floor that vent fluids up to 400 °C. At these depths, many vent sites likely reach supercritical conditions. In space, the atmosphere of Venus is a supercritical fluid. This is because the surface temperature and pressure are both above the critical points for carbon dioxide and nitrogen. The gas giants Jupiter and Saturn also have supercritical fluids in their atmospheres. Their gaseous outer layers transition smoothly into dense liquid interiors.
Understanding supercritical fluids connects to many fields, including planetary science, chemistry, and engineering. In chemistry, researchers study how solubility changes with density. At a constant temperature, solubility usually increases as density increases. However, near the critical point, a slight increase in temperature can cause density to drop sharply. This can cause solubility to drop before it rises again. In planetary science, models suggest that the exoplanet Gliese 876 d might have an ocean of supercritical water. This connects the study of small-scale laboratory fluids to the massive systems of the universe.
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