Aerospace
Titanium is used where low mass, strength, heat resistance or specialised electronic and optical properties matter.
Titanium is element 22 (Ti), located in period 4, group 4 and the d block. At room temperature its reference phase is solid. Its electron configuration is [Ar] 3d2 4s2.
The d subshell participates in the chemistry of titanium. Transition metals can use electrons of similar energies in bonding, which is why variable oxidation states, coordination compounds and catalytic behaviour are common across the d block.
Its electron configuration, [Ar] 3d2 4s2, should be read together with the oxidation state of the compound: removing electrons changes which d orbitals are occupied and can alter colour, magnetism, bonding and reactivity.
For titanium, important chemical forms include metals and alloys, oxides, halides and coordination compounds. Variable oxidation states are common because s and d electrons have similar energies, and ligands around the metal ion can strongly alter colour, magnetism and reactivity.
The reference phase at room temperature is solid. The listed density is 4.506 g/cm³. The melting point is 1 943 K (1 670 °C). The boiling point is 3 560 K (3 287 °C). Pressure, purity and crystal structure can shift measured physical properties.
In practice, titanium is encountered in aerospace, implants and pigments.
Titanium is used where low mass, strength, heat resistance or specialised electronic and optical properties matter.
Titanium is used in biomedical materials selected for corrosion resistance, strength and compatibility with the body.
Titanium compounds provide stable colours or optical properties in paints, ceramics, plastics or glass.
Titanium is in period 4 and group 4. In the neighbourhood shown here, it lies between scandium and vanadium in the same period; zirconium is directly below it in the same group. These positions make it possible to compare atomic size, ionisation energy and bonding behaviour with nearby elements.
Values describe the element or neutral atom where applicable. Physical data can depend on allotrope, pressure and measurement conditions.
The discovery of titanium is associated with William Gregor. 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 47.867(1). This value refers to the isotopic composition of natural terrestrial material, not to the mass of one specific atom.
Titanium 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 titanium depend on chemical form, dose and route of exposure. Pure titanium, 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.