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Recrystallization (chemistry)

physical science Maturity 9-11

We can make things clean.

Single Solvent Recrystallization.png
Single Solvent Recrystallization.png
First, we melt a mix in liquid. Then we let it cool down. Tiny, clean shapes grow. These are called crystals. They help us find pure things. Do you like shiny crystals?
Mixed Solvent Recrystallization.png
Mixed Solvent Recrystallization.png

39 words

We can make things clean.

Single Solvent Recrystallization.png
Single Solvent Recrystallization.png

First, we mix a messy powder into a liquid. We heat the liquid to help it melt. This makes a warm solution.

Mixed Solvent Recrystallization.png
Mixed Solvent Recrystallization.png

Next, we let the liquid cool down slowly. As it cools, tiny shapes begin to grow. These shapes are called crystals.

The clean crystals grow from the liquid. The messy parts stay in the liquid. This leaves us with pure things. It is a smart way to clean a mix.

79 words

Scientists use a way to clean chemicals called recrystallization.

Single Solvent Recrystallization.png
Single Solvent Recrystallization.png
This method turns a messy mix into pure solid crystals. First, a scientist dissolves an impure sample in a liquid. This liquid is called a solvent. The solvent helps the parts of the mix spread out.

Next, the scientist changes the conditions to make crystals grow. One way is to heat the liquid and then cool it. As it cools, the desired parts join together. They form a very neat and orderly shape. This shape is a crystal. The messy parts do not fit into the crystal. They stay dissolved in the liquid instead.

Hot Filtration Recrystallization.png
Hot Filtration Recrystallization.png

There are other ways to make crystals. A scientist might use an antisolvent. This is a second liquid that does not mix well with the first. Adding it makes the crystals form.

Mixed Solvent Recrystallization.png
Mixed Solvent Recrystallization.png
You can also let the liquid slowly evaporate. This means the liquid turns into gas and leaves the room. As the liquid goes away, the crystals grow.
x-ray crystals - slow evaporation 1 solvent.png
x-ray crystals - slow evaporation 1 solvent.png
Scientists often use X-rays to check if the crystals are pure.

183 words

Recrystallization is a special way to clean chemicals. Scientists use it to turn a messy mixture into pure solid crystals.

Single Solvent Recrystallization.png
Single Solvent Recrystallization.png
This method is very important for making pure substances. It works because crystals have a very neat and orderly structure. This structure is called a crystal lattice. The molecules in a crystal fit together like perfect puzzle pieces. Because of this, the pure parts can build a crystal while the messy parts cannot.
Mixed Solvent Recrystallization.png
Mixed Solvent Recrystallization.png

How does this cleaning work step by step? First, a scientist dissolves an impure sample into a liquid called a solvent.

Hot Filtration Recrystallization.png
Hot Filtration Recrystallization.png
The mixture is often heated until it is very hot. This creates a saturated solution where the solid is fully dissolved. Next, the scientist changes the conditions to make the pure parts come out. If the solution cools down slowly, the pure molecules start to join together. They form tiny starting points called nuclei. These nuclei grow into larger crystals as more pure molecules attach to them. The impurities stay dissolved in the liquid because they do not fit the crystal shape.

There are many different ways to make these crystals grow. One popular method is slow evaporation. In this way, a scientist lets the liquid slowly turn into gas. As the liquid disappears, the substance becomes less soluble and forms crystals.

x-ray crystals - slow evaporation 1 solvent.png
x-ray crystals - slow evaporation 1 solvent.png
Another method uses an antisolvent. This is a second liquid that the first liquid can mix with. When the antisolvent is added, the pure substance becomes harder to keep dissolved. This causes the substance to precipitate, or come out of the liquid, as a solid.

Scientists also use methods like gas diffusion and liquid diffusion. In gas diffusion, a vapor from a second solvent moves into the first container.

x-ray crystals - slow gas diffusion 2 solvent.png
x-ray crystals - slow gas diffusion 2 solvent.png
In liquid diffusion, two different liquids are layered on top of each other. The liquids mix very slowly at the interface, which is the place where they meet.
x-ray crystals - slow liquid diffusion.png
x-ray crystals - slow liquid diffusion.png
Sometimes, scientists use a special tool shaped like the letter H. This tool has a fine glass sinter to help the liquids mix at a very slow pace. Slow mixing is helpful because it helps create single, perfect crystals.

Once the crystals are made, scientists must check their purity. They often use a technique called X-ray crystallography. This helps them see if the crystals are pure and not clumped together.

x-ray crystals - slow liquid diffusion - H Tube.png
x-ray crystals - slow liquid diffusion - H Tube.png
It is also important to keep the crystals in a sealed container. They should stay in a little bit of the liquid used to make them. If the crystals dry out completely, they might lose some liquid from inside their structure. This can cause the crystal lattice to break down into a fine powder.

470 words

Recrystallization is a broad class of chemical purification techniques. Scientists use it to separate a pure substance from an impure sample. This process involves dissolving an impure sample in a solvent or a solvent mixture. After dissolving the sample, the scientist changes the conditions to encourage the formation of pure solid crystals. This method is essential because crystallized compounds are extremely important in many scientific fields.

Single Solvent Recrystallization.png
Single Solvent Recrystallization.png

The mechanism of purification relies on spontaneous processes of self-assembly. Crystals possess a highly ordered, periodic molecular structure known as a crystal lattice. This low-entropy structure is the driving force behind the purification. The process works because of different molecular interactions between the desired isolate and the impurities. If a molecule of the desired isolate interacts with an existing crystal, it likely deposits on the ordered surface. This contributes to the growth of the crystal. However, if an impurity molecule interacts with the crystal, it is unlikely to deposit on the ordered surface. Consequently, the impurity remains dissolved in the solvent.

Mixed Solvent Recrystallization.png
Mixed Solvent Recrystallization.png

Initial crystals of the isolate form through processes of stochastic nucleation. These tiny starting points grow into macroscopic sizes as isolate molecules deposit on them. One common method is temperature manipulation. This is used when the isolate has an endothermic dissolution, meaning it requires heat to dissolve. In this case, the solubility product, or Ksp, increases as the temperature rises. A scientist prepares a saturated solution of the impure sample near the boiling point of the solvent. The sample may start as a solid powder or a viscous liquid. The solution is then slowly cooled to create a supersaturated solution. This state makes crystal nucleation imminent.

Hot Filtration Recrystallization.png
Hot Filtration Recrystallization.png

There are several distinct methods used to achieve crystallization. Slow evaporation is a popular technique where a solid is dissolved in a single solvent. The solvent is then allowed to evaporate slowly until the solution becomes saturated. Another method uses a multi-solvent system. In this case, the composition of the solvent changes as the more volatile solvent evaporates. This makes the compound increasingly insoluble, causing it to crystallize.

x-ray crystals - slow evaporation 2 solvent.png
x-ray crystals - slow evaporation 2 solvent.png
Scientists also use mixed solvent systems, such as aqueous ethanol, to aid the process.

Another method involves the use of an antisolvent. This requires the product to be much more soluble in the primary solvent than in a second solvent. The two solvents must be miscible, meaning they can mix together. The scientist adds the antisolvent to the solution until incipient precipitation occurs. The volume ratio between the two solvents and the concentration of the sample are both important factors.

Mixed Solvent Recrystallization.png
Mixed Solvent Recrystallization.png
Some scientists prefer to layer the antisolvent on top of the solution rather than mixing it directly.

Diffusion methods are used to create very specific conditions for crystal growth. In gas diffusion, a second solvent evaporates from one container into a container holding the compound solution. As the solvent composition changes due to the infused vapor, the compound becomes insoluble and crystallizes.

x-ray crystals - slow gas diffusion 2 solvent.png
x-ray crystals - slow gas diffusion 2 solvent.png
Liquid-liquid diffusion is another option. Here, two solvents are layered carefully so they do not mix immediately. They diffuse slowly at the interface, which is the boundary where the two liquids meet.
x-ray crystals - slow liquid diffusion.png
x-ray crystals - slow liquid diffusion.png
To slow this mixing even further, scientists may use an "H" shaped tool. This tool uses a fine glass sinter to restrict the mixing of the two solvent chambers.
x-ray crystals - slow liquid diffusion - H Tube.png
x-ray crystals - slow liquid diffusion - H Tube.png

Once the crystals are obtained, they are often studied using X-ray crystallography. This technique is used to assess the purity of the product. For this to work, the crystals must be singular and absent of clumps. It is also vital to store the crystals in a sealed vessel with some of the liquid of crystallization. Single perfect crystals can contain solvent within their crystal lattice. If this internal solvent is lost, the lattice may break down. This causes the crystals to turn into a fine powder.

664 words
🖼️ Images & Media (8)
File:Single_Solvent_Recrystallization.png
Single_Solvent_Recrystallization.png
File:Mixed_Solvent_Recrystallization.png
Mixed_Solvent_Recrystallization.png
File:Hot_Filtration_Recrystallization.png
Hot_Filtration_Recrystallization.png
File:x-ray crystals - slow evaporation 1 solvent.png
x-ray crystals - slow evaporation 1 solvent.png
File:x-ray crystals - slow evaporation 2 solvent.png
x-ray crystals - slow evaporation 2 solvent.png
File:x-ray crystals - slow gas diffusion 2 solvent.png
x-ray crystals - slow gas diffusion 2 solvent.png
File:x-ray crystals - slow liquid diffusion.png
x-ray crystals - slow liquid diffusion.png
File:x-ray crystals - slow liquid diffusion - H Tube.png
x-ray crystals - slow liquid diffusion -...
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