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Samarium

physical science Maturity 7-9

Samarium is a shiny metal.

Samarskite-fresh.jpg
Samarskite-fresh.jpg
It looks like silver. It can help make magnets. It can also help doctors treat some sicknesses. It is a very special thing. Do you want to learn more?

35 words

Samarium is a shiny, silver metal.

Samarskite-fresh.jpg
Samarskite-fresh.jpg

It comes from special rocks. These rocks are found in many lands. China mines a lot of it.

This metal can help make strong magnets. These magnets work well even when they are hot.

Some samarium can also help doctors. It can kill bad cells in the body.

153Sm-lexidronam structure.svg
153Sm-lexidronam structure.svg

It is a very useful part of our world.

66 words

Samarium is a silvery metal. It is moderately hard.

Samarskite-fresh.jpg
Samarskite-fresh.jpg

A chemist named Paul-Émile Lecoq de Boisbaudran found it in 1879. He named it after a mineral called samarskite. This mineral was named after a Russian official named Vassili Samarsky-Bykhovets.

Lecoq de Boisbaudran.jpg
Lecoq de Boisbaudran.jpg

We find samarium in many rocks. These include monazite and bastnäsite. China is the world leader in mining it. Most samarium comes from China, the United States, Brazil, India, Sri Lanka, and Australia.

Samarium is very useful. It helps make strong magnets. These magnets stay magnetic even in high heat. Some samarium is used in medicine. A type called samarium-153 helps kill cancer cells in the body.

153Sm-lexidronam structure.svg
153Sm-lexidronam structure.svg

It is also used in nuclear reactors. One type of samarium absorbs neutrons. Neutrons are tiny particles in a reactor. This helps control how the reactor works. Samarium can also be used for X-ray lasers. It can even help with dating old things.

Samarium-sulfate.jpg
Samarium-sulfate.jpg

156 words

Samarium is a unique chemical element. It is a silvery metal that is moderately hard.

Samarskite-fresh.jpg
Samarskite-fresh.jpg
You might notice it looks dull if it sits in the air for a long time. This happens because it slowly oxidizes, which means it reacts with the oxygen around it. Samarium belongs to a group of elements called lanthanides. It has the symbol Sm and the atomic number 62. It is quite rare in the Earth's crust.
Samarium(III) chloride hexahydrate.jpg
Samarium(III) chloride hexahydrate.jpg

This metal works in many different ways. Some samarium is used to make very strong magnets. These are called samarium-cobalt magnets. They are almost as strong as neodymium magnets. However, they have a special talent for handling heat. They can stay magnetic even at temperatures above 100 °C. This makes them very useful in hot environments.

Samariumiodide.jpg
Samariumiodide.jpg
Samarium also helps in science labs. It can act as a reducing agent, which helps move electrons during chemical reactions. It can even be used to help make X-ray lasers.

A chemist named Paul-Émile Lecoq de Boisbaudran discovered samarium in 1879.

Lecoq de Boisbaudran.jpg
Lecoq de Boisbaudran.jpg
He named the element after a mineral called samarskite. This mineral was named after a Russian official named Vassili Samarsky-Bykhovets. He was actually the first person to have an element named after him. The name was indirect, but it still honored him. This discovery helped scientists understand the lanthanide series much better.

We find samarium in several different minerals. It can be found in cerite, gadolinite, and monazite. Two common sources are monazite and bastnäsite. These minerals can contain up to 2.8% samarium. Most of these are mined in China, the United States, Brazil, India, Sri Lanka, and Australia. China is the world leader in mining and producing it.

Samarium-sulfate.jpg
Samarium-sulfate.jpg
This makes China a very important place for this metal.

Samarium also plays a role in medicine and power. A special version called samarium-153 is used in medicine. It is part of a drug that helps kill cancer cells. It can treat cancer in the lungs, prostate, and breasts.

153Sm-lexidronam structure.svg
153Sm-lexidronam structure.svg
In nuclear reactors, samarium-149 is used as a neutron absorber. This means it soaks up tiny particles to help control the reactor. This helps keep the power plant running safely and smoothly.

371 words

Samarium is a chemical element with the symbol Sm and atomic number 62. It is a moderately hard, silvery metal that belongs to the lanthanide series.

Samarskite-fresh.jpg
Samarskite-fresh.jpg
In its pure form, samarium slowly oxidizes when exposed to air. This oxidation causes its bright, silvery lustre to turn into a duller appearance. Samarium is considered a rare earth element. It has a density and hardness similar to the metal zinc. One of its most striking physical features is its atomic radius. At 238 pm, samarium has one of the largest atomic radii of all elements. Only five other elements, including potassium and caesium, have larger radii.
Lecoq de Boisbaudran.jpg
Lecoq de Boisbaudran.jpg

The physical structure of samarium changes depending on temperature and pressure. In normal ambient conditions, it exists in a rhombohedral structure called the α form. When the metal is heated to 373 K, its crystal symmetry shifts to a hexagonal close-packed (hcp) structure. If heating continues to 658 K, it transforms into a body-centered cubic (bcc) phase. High pressure also forces the atoms into new arrangements. Applying 40 kbar of pressure results in a double-hexagonally close-packed (dhcp) structure. At much higher pressures, such as 900 kbar, a tetragonal phase appears. These shifts show how sensitive the metal's internal organization is to its environment.

Chemically, samarium is quite versatile and can exist in different oxidation states. While it usually has a +3 oxidation state, it is one of the few lanthanides that can also reach a +2 state.

Samariumiodide.jpg
Samariumiodide.jpg
This makes it useful as a reducing agent, which is a substance that helps transfer electrons in chemical synthesis. For example, samarium(II) iodide is a common tool in laboratories. Samarium also reacts with water. It reacts slowly with cold water, but it reacts rapidly with hot water to create samarium hydroxide. To prevent it from oxidizing too quickly, scientists often seal samarium under an inert gas like argon. This preserves its metallic look.

Samarium is found in several different minerals in nature. It can appear in concentrations of up to 2.8% in minerals like cerite, gadolinite, and monazite.

Samarskite-fresh.jpg
Samarskite-fresh.jpg
The most common commercial sources for the element are monazite and bastnäsite. These minerals are mined in various parts of the world, including the United States, Brazil, India, Sri Lanka, and Australia. China is currently the global leader in both the mining and production of samarium. This makes the element's supply chain heavily centered in that region.

The history of samarium's discovery is tied to both chemistry and naming traditions. The French chemist Paul-Émile Lecoq de Boisbaudran discovered the element in 1879.

Lecoq de Boisbaudran.jpg
Lecoq de Boisbaudran.jpg
He named it after the mineral samarskite. This mineral was named to honor a Russian mine official, Colonel Vassili Samarsky-Bykhovets. Because of this connection, Samarsky-Bykhovets became the first person to have a chemical element named after him, even though the name was indirect. This discovery helped scientists better understand the properties of the lanthanide series.

Samarium has several critical applications in modern technology and medicine. Its most common commercial use is in the production of samarium–cobalt magnets. These magnets have permanent magnetization that is second only to neodymium magnets.

Samariumiodide.jpg
Samariumiodide.jpg
However, samarium–cobalt magnets have a major advantage: they can withstand temperatures above 100 °C without losing their magnetic properties. In the field of nuclear energy, the isotope samarium-149 is used as a neutron absorber. It is added to the control rods of nuclear reactors to manage the reaction. It also forms naturally during reactor operation, which engineers must consider when designing these systems.

Medical science also uses specific isotopes of this element to treat illness. The radioisotope samarium-153 is the active part of a drug called lexidronam.

153Sm-lexidronam structure.svg
153Sm-lexidronam structure.svg
This drug is used to kill cancer cells in several areas, including the lungs, prostate, and breasts, as well as in osteosarcoma. Beyond medicine, samarium is used in X-ray lasers and for radioactive dating. It even shows interesting behavior in superconductivity. When samarium is used to "dope" or add to iron-based superconductors, it can increase their transition temperature to 56 K. This is the highest value ever achieved in that specific class of materials.

683 words
🖼️ Images & Media (6)
File:Samarium(III) chloride hexahydrate.jpg
Samarium(III) chloride hexahydrate.jpg
File:Samarium-sulfate.jpg
Samarium-sulfate.jpg
File:153Sm-lexidronam structure.svg
153Sm-lexidronam structure.svg
File:Lecoq de Boisbaudran.jpg
Lecoq de Boisbaudran.jpg
File:Samarskite-fresh.jpg
Samarskite-fresh.jpg
File:Samariumiodide.jpg
Samariumiodide.jpg
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