16 S 32.06

Sulfur

Reactive nonmetal Sulfur solid

[Ne] 3s² 3p⁴ · 2 · 8 · 6

A bright yellow nonmetal known since antiquity as brimstone. Sulfur forms more allotropes than any other element, and the sulfuric acid made from it is the largest-tonnage chemical in the world.

3D model

Bohr model: nucleus and electron shells from the real configuration. Valence electrons are highlighted.

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Atomic properties

Atomic number
16
Atomic mass
32.06 а.е.м.
№103 / 118
Electron configuration
[Ne] 3s² 3p⁴
Electrons per shell
2 · 8 · 6
Block
p-block
Group
Chalcogens
Period
3
Electronegativity (Pauling)
2.58
№9 / 100
Electronegativity (Allen)
2.59
Atomic radius
88 pm
№93 / 103
Covalent radius
105 pm
№108 / 118
Van der Waals radius
180 pm
Ionisation energy 1
999.6 kJ/mol
№19 / 118
Ionisation energy 2
2 252 kJ/mol
Ionisation energy 3
3 357 kJ/mol
Ionisation energy 4
4 556 kJ/mol
Ionisation energy 5
7 004.3 kJ/mol
Electron affinity
200.4 kJ/mol
№8 / 108
Common oxidation states
-2, +4, +6
Oxidation states
-2, -1, +1, +2, +3, +4, +5, +6

Physical properties

State at 25 °C
solid
Density
2.07 g/cm³
№97 / 118
Melting point
388.36 K · 115.2 °C
№87 / 111
Boiling point
717.8 K · 444.7 °C
№88 / 107
Speed of sound
no data

Thermal properties

Heat of fusion
1.727 kJ/mol
№89 / 98
Heat of vaporisation
45 kJ/mol
№81 / 98
Specific heat capacity
0.71 J/(g·K)
№15 / 95
Thermal conductivity
0.205 W/(m·K)
№84 / 96

Mechanical properties

Young's modulus
no data
Shear modulus
no data
Bulk modulus
7.7 GPa
Poisson ratio
no data
Mohs hardness
2
№43 / 57
Brinell hardness
no data

Electrical and magnetic properties

Electrical resistivity
2·10¹⁵ nΩ·m
№1 / 84
Magnetic ordering
diamagnetic
Curie point
no data
Néel point
no data
Superconducting point
no data

Crystal structure

Crystal structure
orthorhombic
Lattice constants
a = 1 043.7 pm · b = 1 284.5 pm · c = 2 436.9 pm

Abundance

In the crust
350 mg/kg
№16 / 88
In the ocean
905 mg/L
№6 / 78
In the universe
500 000 mg/kg
№10 / 83
In the human body
2 000 mg/kg
№8 / 40

Isotopes

Isotope Abundance Half-life Decay mode
32S 94.99 % stable
33S 0.75 % stable
34S 4.25 % stable
36S 0.01 % stable

The sulfur-34 to sulfur-32 ratio in sedimentary rock records the activity of sulfate-reducing bacteria and serves as a marker of early life.

Discovery

Year of discovery
known since antiquity
Discovered by
known since antiquity
Where
no data
Origin of the name
from Sanskrit sulvere and Latin sulphurium

History

Sulfur was used for fumigation and medicine long before written history, and appears in the Bible and in Chinese texts. Lavoisier proved in 1777 that it is an element rather than a compound.

Where it occurs

350 mg/kg of the crust, found native around volcanoes and bound as sulfides and sulfates. In the ocean sulfate is the second most abundant anion after chloride.

How it is produced

Almost all sulfur today is a by-product of desulfurising oil and gas by the Claus process. Frasch mining of native sulfur has essentially ceased.

Role in living things

Sulfur is in the amino acids cysteine and methionine, and the disulfide bridges between them set a protein's tertiary structure. They are what make hair and nails tough.

Safety

Sulfur itself is of low toxicity. Its compounds are not: hydrogen sulfide paralyses the sense of smell and kills faster than hydrogen cyanide, and sulfur dioxide produces acid rain.

Uses

  • Sulfuric acid: fertiliser, metallurgy, refining — over 250 million tonnes a year
  • Vulcanising rubber: sulfur cross-links the polymer chains and turns a sticky mass into rubber
  • Fungicides and crop protection
  • Black powder and pyrotechnics
  • Sulfite pulping of wood

Curiosities

  • The rotten-egg smell is hydrogen sulfide, not sulfur; sulfur itself barely smells at all.
  • Sulfur has more than thirty allotropes, a record among the elements.
  • Molten sulfur darkens and thickens on heating, then thins again — a rare viscosity anomaly.
  • A country's sulfuric acid output was long taken as a measure of its industrial development.

Position in the table

S