What is Tellurium?
Tellurium (symbol Te) is element 52 on the periodic table, a metalloid in period 5, group 16. Rare on Earth, common in the universe, and the element that makes rewritable optical discs work. 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 tellurium 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 139 pm — that is 0.139 nm, so about 3597 million of them side by side would span a millimetre.
Thermal range
Tellurium is liquid over a 538 K window, from 723 K to 1261 K.
The story
Rare on Earth, common in the universe, and the element that makes rewritable optical discs work.
Franz-Joseph Müller von Reichenstein, chief inspector of mines in Transylvania (now Romania), encountered a peculiar metallic ore in the Zlatna gold mines. Local miners called it "aurum paradoxum" (paradoxical gold) because it resembled gold but behaved strangely when processed.
Müller spent three years investigating this mysterious substance:
"This mineral contains a peculiar metal of a white color, not yet described, which I propose to call tellurium from the Latin word for earth." - Müller's original description
Martin Heinrich Klaproth (1798), the renowned German chemist who discovered uranium and zirconium, confirmed Müller's work. Klaproth independently isolated tellurium from the same Transylvanian ore and verified its elemental nature.
For decades, tellurium was confused with selenium due to similar properties:
1860s Discovery: Geologists realized that tellurium-rich gold ores in places like Cripple Creek, Colorado, and Kalgoorlie, Australia, contained some of the world's richest gold deposits. Tellurides became synonymous with bonanza gold strikes.
1970s Breakthrough: Scientists at the University of Delaware developed the first efficient cadmium telluride solar cells, launching tellurium's most important modern application. This discovery transformed an obscure metalloid into a critical material for renewable energy.
1990s-2000s: Phase-change memory research revealed tellurium's unique ability to rapidly switch between crystalline and amorphous states, enabling:
Applications
Cadmium telluride (CdTe) solar cells represent one of the most cost-effective photovoltaic technologies, converting sunlight to electricity with over 22% efficiency. These thin-film solar panels require only 3-5 grams of tellurium per kilowatt, making large-scale solar deployment economically viable.
Where it comes from
0.001 mg/kg of Earth's crust · more abundant than 32% of elements
Tellurium is rarer than gold in Earth's crust, with an abundance of only 0.001 ppm (1 ppb). This extreme scarcity makes it one of the rarest stable elements, more than 1,000 times rarer than tin or antimony.
No primary tellurium mines exist - all commercial tellurium comes as a byproduct from:
Tellurium's chalcophile nature means it concentrates in sulfide minerals and follows sulfur in geological processes. Its extreme rarity results from:
In the universe, tellurium forms through s-process nucleosynthesis in asymptotic giant branch stars. Despite being cosmically rare, Earth's tellurium depletion makes it extraordinarily scarce compared to neighboring elements.
Handling
Tellurium and its compounds are moderately toxic, with some unique biological effects not seen with other elements. While less toxic than mercury or lead, tellurium requires careful handling and specific safety precautions.
Tellurium breath is the most characteristic effect of exposure:
Quick answers
Tellurium (symbol Te) is element 52 on the periodic table, a metalloid in period 5, group 16. Rare on Earth, common in the universe, and the element that makes rewritable optical discs work. At room temperature it is a solid.
[Kr] 4d¹⁰ 5s² 5p⁴, giving 5 occupied shells holding 2, 8, 18, 18, 6 electrons respectively. Its outer shell holds 6 electrons, which is what sets its bonding behaviour.Tellurium melts at 722.7 K (449.5 °C) and boils at 1261 K (987.9 °C).
The standard atomic weight of Tellurium is 127.6 u. That is a weighted average across its naturally occurring isotopes, which is why it is rarely a whole number.
Tellurium has a density of 6.24 g/cm³. Water is 1.0 g/cm³, so a block of tellurium is about 6.2× heavier.
Tellurium has a Pauling electronegativity of 2.1. 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.
Tellurium was discovered in 1783 by Franz-Joseph Muller von Reichenstein. It is named after latin tellus, "earth".
Tellurium makes up about 0.001 mg/kg of the Earth's crust — genuinely rare, which is why it is expensive.