Tin
[Kr] 4d¹⁰ 5s² 5p² · 2 · 8 · 18 · 18 · 4
The metal whose alloy with copper opened the Bronze Age. Tin has ten stable isotopes, more than any other element, a consequence of the magic proton number 50.
3D model
Bohr model: nucleus and electron shells from the real configuration. Valence electrons are highlighted.
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Atomic properties
- Atomic number
- 50
- Atomic mass
- 118.71 а.е.м.
- Electron configuration
- [Kr] 4d¹⁰ 5s² 5p²
- Electrons per shell
- 2 · 8 · 18 · 18 · 4
- Block
- p-block
- Group
- Carbon group
- Period
- 5
- Electronegativity (Pauling)
- 1.96
- Electronegativity (Allen)
- 1.82
- Atomic radius
- 145 pm
- Covalent radius
- 139 pm
- Van der Waals radius
- 217 pm
- Ionisation energy 1
- 708.6 kJ/mol
- Ionisation energy 2
- 1 411.8 kJ/mol
- Ionisation energy 3
- 2 943 kJ/mol
- Ionisation energy 4
- 3 930.3 kJ/mol
- Ionisation energy 5
- 7 456 kJ/mol
- Electron affinity
- 107.3 kJ/mol
- Common oxidation states
- +2, +4
- Oxidation states
- -4, -3, -2, -1, +1, +2, +3, +4
Physical properties
- State at 25 °C
- solid
- Density
- 7.265 g/cm³
- Melting point
- 505.08 K · 231.9 °C
- Boiling point
- 2 875 K · 2 601.9 °C
- Speed of sound
- 2 500 m/s
Thermal properties
- Heat of fusion
- 7.03 kJ/mol
- Heat of vaporisation
- 296.1 kJ/mol
- Specific heat capacity
- 0.228 J/(g·K)
- Thermal conductivity
- 66.8 W/(m·K)
Mechanical properties
- Young's modulus
- 50 GPa
- Shear modulus
- 18 GPa
- Bulk modulus
- 58 GPa
- Poisson ratio
- 0.36
- Mohs hardness
- 1.5
- Brinell hardness
- 51 MPa
Electrical and magnetic properties
- Electrical resistivity
- 115 nΩ·m
- Magnetic ordering
- diamagnetic
- Curie point
- no data
- Néel point
- no data
- Superconducting point
- 3.72 K
Crystal structure
- Crystal structure
- tetragonal
- Lattice constants
- a = 583.18 pm · c = 318.19 pm
Abundance
- In the crust
- 2.3 mg/kg
- In the ocean
- 8·10⁻⁷ mg/L
- In the universe
- 0.004 mg/kg
- In the human body
- 0.2 mg/kg
Isotopes
| Isotope | Abundance | Half-life | Decay mode |
|---|---|---|---|
| 112Sn | 0.97 % | stable | — |
| 114Sn | 0.66 % | stable | — |
| 115Sn | 0.34 % | stable | — |
| 116Sn | 14.54 % | stable | — |
| 117Sn | 7.68 % | stable | — |
| 118Sn | 24.22 % | stable | — |
| 119Sn | 8.59 % | stable | — |
| 120Sn | 32.58 % | stable | — |
| 122Sn | 4.63 % | stable | — |
| 124Sn | 5.79 % | stable | — |
Ten stable isotopes, the outright record for the table. The reason is that 50 protons close a nuclear shell, which makes the nucleus exceptionally stable.
Discovery
- Year of discovery
- known since antiquity
- Discovered by
- known since antiquity
- Where
- no data
- Origin of the name
- from Latin stannum; alloyed with copper it made the Bronze Age
History
Tin was smelted from the fourth millennium BCE. Cornish tin mines supplied the Mediterranean long before Rome; the Phoenicians called those lands the Tin Islands.
Where it occurs
2.3 mg/kg of the crust. Cassiterite, SnO₂, is essentially the only ore. The largest producers are China, Indonesia and Myanmar.
How it is produced
Carbon reduction of cassiterite in reverberatory furnaces, followed by refining. A substantial share is recycled from solder and tinplate.
Role in living things
Not considered essential. Inorganic tin compounds are of low toxicity; organotin compounds are decidedly not.
Safety
Tributyltin, once used in ship antifouling paint, proved a powerful endocrine disruptor and was banned by international convention in 2008.
Uses
- Solders — the largest use, especially since lead was banned from electronics
- Tinplate: a thin tin layer protects the steel of a food can
- Bronze and pewter
- The float process for sheet glass: molten glass is poured onto a bath of liquid tin
- PVC stabilisers and catalysts
Curiosities
- Tin has more stable isotopes than any other element.
- Tin pest: below 13 °C white tin slowly turns into a grey powder, destroying the object.
- Tin pest is one proposed explanation for the failure of Scott's expedition — fuel leaked from tin-soldered cans.
- Bent tin gives a characteristic crackle, the tin cry, as its crystals rearrange.