35 Br 79.904

Bromine

Reactive nonmetal Bromum liquid

[Ar] 3d¹⁰ 4s² 4p⁵ · 2 · 8 · 18 · 7

The only nonmetal that is liquid at room temperature, and one of just two liquid elements. Bromine's heavy red-brown vapour smells appalling — hence the name, from the Greek for stench.

3D model

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

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Atomic properties

Atomic number
35
Atomic mass
79.904 а.е.м.
№84 / 118
Electron configuration
[Ar] 3d¹⁰ 4s² 4p⁵
Electrons per shell
2 · 8 · 18 · 7
Block
p-block
Group
Halogens
Period
4
Electronegativity (Pauling)
2.96
№6 / 100
Electronegativity (Allen)
2.69
Atomic radius
94 pm
№91 / 103
Covalent radius
120 pm
№102 / 118
Van der Waals radius
185 pm
Ionisation energy 1
1 139.9 kJ/mol
№12 / 118
Ionisation energy 2
2 103 kJ/mol
Ionisation energy 3
3 470 kJ/mol
Ionisation energy 4
4 560 kJ/mol
Ionisation energy 5
5 760 kJ/mol
Electron affinity
324.6 kJ/mol
№3 / 108
Common oxidation states
-1, +1, +5
Oxidation states
-1, +1, +3, +4, +5, +7

Physical properties

State at 25 °C
liquid
Density
3.103 g/cm³
№90 / 118
Melting point
265.8 K · -7.3 °C
№98 / 111
Boiling point
332 K · 58.9 °C
№96 / 107
Speed of sound
no data

Thermal properties

Heat of fusion
10.571 kJ/mol
№51 / 98
Heat of vaporisation
29.96 kJ/mol
№85 / 98
Specific heat capacity
0.474 J/(g·K)
№25 / 95
Thermal conductivity
0.122 W/(m·K)
№87 / 96

Mechanical properties

Young's modulus
no data
Shear modulus
no data
Bulk modulus
1.9 GPa
Poisson ratio
no data
Mohs hardness
no data
Brinell hardness
no data

Electrical and magnetic properties

Electrical resistivity
7.8·10¹⁰ nΩ·m
№4 / 84
Magnetic ordering
diamagnetic
Curie point
no data
Néel point
no data
Superconducting point
no data

Crystal structure

Crystal structure
orthorhombic
Lattice constants
a = 672.65 pm · b = 464.51 pm · c = 870.23 pm

Abundance

In the crust
2.4 mg/kg
№50 / 88
In the ocean
67.3 mg/L
№9 / 78
In the universe
0.007 mg/kg
№67 / 83
In the human body
2.9 mg/kg
№18 / 40

Isotopes

Isotope Abundance Half-life Decay mode
79Br 50.69 % stable
81Br 49.31 % stable

Two stable isotopes in near-equal proportion, which gives bromine-containing compounds their characteristic doublet in a mass spectrum.

Discovery

Year of discovery
1826
№66 / 108
Discovered by
Antoine Jérôme Balard
Where
France
Origin of the name
from Greek bromos (stench): the vapour smells foul

History

Antoine Balard isolated bromine in 1826 from Mediterranean saltworks brine. Justus Liebig had held the same reagent shortly before but took it for iodine chloride and missed the discovery.

Where it occurs

2.4 mg/kg of the crust, but 67 mg/L of seawater. The industrial sources are Dead Sea brines and subsurface brines in Arkansas.

How it is produced

Chlorine displaces bromine from brine, and air or steam strips it out. The process is simple and has barely changed in a century.

Role in living things

Long thought unnecessary, but in 2014 bromine was shown to be required for cross-linking collagen IV in basement membranes — making it the first new essential trace element in decades.

Safety

Liquid bromine causes severe chemical burns and the vapour attacks the airways. Bromides were widely used as sedatives in the nineteenth century, producing chronic bromism.

Uses

  • Brominated flame retardants in plastics, textiles and electronics
  • Silver bromide, the light-sensitive layer of classic photographic film
  • High-density drilling fluids based on zinc and calcium bromide
  • Fumigants and pharmaceutical intermediates

Curiosities

  • Bromine and mercury are the only two elements liquid at room temperature and ordinary pressure.
  • Tyrian purple of antiquity is dibromoindigo, harvested from sea snails; a gram of dye took ten thousand molluscs.
  • That mass-spectrometry doublet gives away the presence of bromine at a glance.
  • In the atmosphere bromine destroys ozone about fifty times more efficiently than chlorine.

Position in the table

Br