Magnets
Samarium is used in magnetic materials where strong, stable or temperature-resistant magnetism is required.
Samarium is element 62 (Sm), located in period 6, group — and the f block. At room temperature its reference phase is solid. Its electron configuration is [Xe] 4f6 6s2.
The lanthanides are characterised by filling of the 4f subshell. Their chemistry is often dominated by the +3 oxidation state, while partially filled f orbitals give many members useful magnetic and optical properties.
Because the 4f electrons are relatively shielded, neighbouring lanthanides have very similar chemical behaviour. Separating them from one another is therefore much harder than separating elements from different main groups.
Lanthanides are commonly encountered as +3 ions in oxides, halides and coordination compounds. Their compounds often have closely related chemistry, while differences in f-electron structure create distinctive magnetic and luminescent behaviour.
The reference phase at room temperature is solid. The listed density is 7.52 g/cm³. The melting point is 1 346 K (1 073 °C). The boiling point is 2 173 K (1 900 °C). Pressure, purity and crystal structure can shift measured physical properties.
In practice, samarium is encountered in magnets, nuclear reactors and medical applications.
Samarium is used in magnetic materials where strong, stable or temperature-resistant magnetism is required.
Samarium is used in reactor materials, fuels, neutron control or specialised nuclear systems depending on the isotope and chemical form.
Samarium is used in selected medicines, implants, diagnostics or treatment technologies; the chemical or isotopic form is crucial.
Samarium is in period 6. In the f-block sequence shown here, it appears between promethium and europium. This sequence allows a direct comparison with the neighbouring f-block elements.
Values describe the element or neutral atom where applicable. Physical data can depend on allotrope, pressure and measurement conditions.
The discovery of samarium is associated with Lecoq de Boisbaudran. Recognition of the element, isolation of a pure sample and assignment of its modern atomic number did not necessarily occur at the same time.
The standard atomic weight is 150.36(2). This value refers to the isotopic composition of natural terrestrial material, not to the mass of one specific atom.
Samarium has at least one stable isotope. Different isotopes have the same number of protons and therefore the same element identity, but different neutron numbers and atomic masses.
The hazards associated with samarium depend on chemical form, dose and route of exposure. Pure samarium, its ions and its compounds can have very different biological and environmental effects, so safety data should be checked for the actual substance being handled.