What is Yttrium?
Yttrium (symbol Y) is element 39 on the periodic table, a transition metal in period 5, group 3. A "rare earth" that is not actually rare, and the reason your phone screen glows the right colours. At room temperature it is a solid.
Structure
Not a diagram of dots on rings — a Monte-Carlo sample of the actual probability density |ψ|² for each occupied subshell. Drag to rotate. Blue and violet mark opposite signs of the wavefunction, which is what makes bonding possible.
Measured values
Every bar shows where yttrium sits among all 118 elements for that property.
Sources: IUPAC 2021 standard atomic weights · CRC Handbook of Chemistry and Physics · NIST. Values marked ~ are predicted rather than measured.
Size, to scale
Radius 180 pm — that is 0.18 nm, so about 2778 million of them side by side would span a millimetre.
Thermal range
Yttrium is liquid over a 1810 K window, from 1799 K to 3609 K.
The story
Yttrium is the silvery transition metal that powers red phosphors in television screens and creates the strongest magnets on Earth. Named after the Swedish village of Ytterby, which has the remarkable distinction of having four different elements discovered in minerals from its quarry, yttrium has become absolutely essential for modern high-tech applications despite being relatively unknown to the general public. Discovered in 1794 by Finnish chemist Johan Gadolin while analyzing a heavy black mineral from Ytterby, Sweden, yttrium was initially called "yttria" (its oxide form). The pure metal wasn't isolated until 1828 by Friedrich Wöhler, and high-purity yttrium only became available in the 1950s. This delay meant yttrium's incredible properties weren't fully exploited until the modern electronics age. What makes yttrium absolutely crucial is its role in creating yttrium aluminum garnet (YAG), one of the most important synthetic crystals ever developed. YAG crystals doped with rare earth elements create powerful lasers used for everything from industrial cutting to eye surgery. Neodymium-doped YAG (Nd:YAG) lasers can cut through steel or perform delicate retinal surgery with equal precision. Yttrium also revolutionized television technology. Yttrium oxide phosphors create the brilliant red color in cathode ray tube TVs and computer monitors. Before flat screens, every color TV contained yttrium compounds that glowed red when struck by electrons, making color television possible on a mass scale. Here's something extraordinary: yttrium barium copper oxide (YBCO) is a high-temperature superconductor that conducts electricity with zero resistance when cooled with liquid nitrogen. This "miracle material" opened up practical applications for superconductivity, from MRI machines to experimental magnetic levitation trains.
Johan Gadolin discovered yttrium in 1794 while analyzing gadolinite mineral from a quarry near Ytterby, Sweden. The village of Ytterby ultimately gave its name to four different elements: yttrium, ytterbium, erbium, and terbium.
Applications
Yttrium enables modern displays and lighting through its exceptional phosphor properties, while its role in superconducting ceramics and advanced alloys makes it essential for cutting-edge technology applications.
Yttrium oxide (Y₂O₃) serves as the host material for red phosphors in LED displays, television screens, and computer monitors. Yttrium aluminum garnet (YAG) phosphors convert blue LED light to white light in energy-efficient lighting systems.
Yttrium barium copper oxide (YBCO) represents the first practical high-temperature superconductor, enabling power transmission, magnetic levitation, and medical imaging applications at liquid nitrogen temperatures rather than expensive liquid helium cooling.
Nd:YAG lasers use yttrium aluminum garnet crystals doped with neodymium for industrial cutting, medical surgery, and military applications. These solid-state lasers provide reliable, high-power performance for precision manufacturing and medical procedures.
Where it comes from
33 mg/kg of Earth's crust · more abundant than 76% of elements
Yttrium occurs in rare earth element deposits, particularly in xenotime and monazite minerals. Major sources include ion-absorption clays in southern China and placer deposits in Malaysia and Australia.
Handling
Yttrium compounds exhibit relatively low toxicity, though inhalation of fine particles should be avoided. Standard laboratory safety procedures provide adequate protection for most yttrium applications.
Personal protective equipment and dust control measures prevent inhalation exposure. Radioactive yttrium isotopes require radiation safety protocols and appropriate shielding.
Quick answers
Yttrium (symbol Y) is element 39 on the periodic table, a transition metal in period 5, group 3. A "rare earth" that is not actually rare, and the reason your phone screen glows the right colours. At room temperature it is a solid.
[Kr] 4d¹ 5s², giving 5 occupied shells holding 2, 8, 18, 9, 2 electrons respectively.Yttrium melts at 1799 K (1525.9 °C) and boils at 3609 K (3335.9 °C).
The standard atomic weight of Yttrium is 88.906 u. That is a weighted average across its naturally occurring isotopes, which is why it is rarely a whole number.
Yttrium has a density of 4.472 g/cm³. Water is 1.0 g/cm³, so a block of yttrium is about 4.5× heavier.
Yttrium has a Pauling electronegativity of 1.22. The scale runs from 0.70 (francium, the least greedy for electrons) to 3.98 (fluorine, the most). Values in this middle band tend to form covalent rather than strongly ionic bonds.
Yttrium was discovered in 1794 by Johan Gadolin. It is named after ytterby, a Swedish village.
Yttrium makes up about 33 mg/kg of the Earth's crust — uncommon, but not rare.