5 B 10.81

Boron

Metalloid Borum solid

[He] 2s² 2p¹ · 2 · 3

A metalloid on the border between metals and nonmetals: boron itself is a dark, very hard, brittle substance, while its compounds give heat-proof glass and industry's best neutron absorber.

3D model

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

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Atomic properties

Atomic number
5
Atomic mass
10.81 а.е.м.
№114 / 118
Electron configuration
[He] 2s² 2p¹
Electrons per shell
2 · 3
Block
p-block
Group
Boron group
Period
2
Electronegativity (Pauling)
2.04
№28 / 100
Electronegativity (Allen)
2.05
Atomic radius
87 pm
№94 / 103
Covalent radius
84 pm
№111 / 118
Van der Waals radius
192 pm
Ionisation energy 1
800.6 kJ/mol
№37 / 118
Ionisation energy 2
2 427.1 kJ/mol
Ionisation energy 3
3 659.7 kJ/mol
Ionisation energy 4
25 026 kJ/mol
Ionisation energy 5
32 827 kJ/mol
Electron affinity
26.7 kJ/mol
№78 / 108
Common oxidation states
+3
Oxidation states
-5, -1, +1, +2, +3

Physical properties

State at 25 °C
solid
Density
2.34 g/cm³
№94 / 118
Melting point
2 349 K · 2 075.9 °C
№13 / 111
Boiling point
4 200 K · 3 926.9 °C
№17 / 107
Speed of sound
16 200 m/s
№2 / 72

Thermal properties

Heat of fusion
50.2 kJ/mol
№6 / 98
Heat of vaporisation
508 kJ/mol
№13 / 98
Specific heat capacity
1.026 J/(g·K)
№8 / 95
Thermal conductivity
27.4 W/(m·K)
№46 / 96

Mechanical properties

Young's modulus
460 GPa
№5 / 70
Shear modulus
no data
Bulk modulus
185 GPa
Poisson ratio
no data
Mohs hardness
9.3
№2 / 57
Brinell hardness
no data

Electrical and magnetic properties

Electrical resistivity
1·10¹² nΩ·m
№3 / 84
Magnetic ordering
diamagnetic
Curie point
no data
Néel point
no data
Superconducting point
no data

Crystal structure

Crystal structure
rhombohedral
Lattice constants
a = 506 pm · c = 1 257 pm

Abundance

In the crust
10 mg/kg
№37 / 88
In the ocean
4.44 mg/L
№12 / 78
In the universe
0.001 mg/kg
№79 / 83
In the human body
0.7 mg/kg
№23 / 40

Isotopes

Isotope Abundance Half-life Decay mode
10B 19.9 % stable
11B 80.1 % stable

Boron-10 (19.9 %) absorbs thermal neutrons 250 000 times more readily than boron-11, and all of nuclear boron chemistry rests on that.

Discovery

Year of discovery
1808
№75 / 108
Discovered by
Gay-Lussac, Thénard and Davy
Where
France and England
Origin of the name
from Arabic buraq (borax), the mineral it was isolated from

History

Gay-Lussac and Thénard in France and Davy in England independently isolated boron in 1808 by reducing boric acid. Purity above 99 % had to wait for the twentieth century — boron is stubbornly hard to refine.

Where it occurs

10 mg/kg in the crust, but four hundred times more concentrated in seawater. The commercial deposits are borate salts from dried lakes in Turkey and California.

How it is produced

Borax and colemanite give boric acid, then the oxide, which magnesium reduces. Very pure boron comes from decomposing boranes on a hot filament.

Role in living things

Boron is an essential micronutrient for plants; for humans the case is unproven, though traces sit in bone.

Safety

Boron itself is of low toxicity, but boric acid and borates damage the reproductive system on repeated ingestion, and the EU lists them as substances of very high concern.

Uses

  • Borosilicate glass: low thermal expansion, hence laboratory and oven-proof ware
  • Control rods and dissolved boric acid in nuclear reactors — boron-10 devours neutrons
  • Boron carbide, the third-hardest known substance after diamond and boron nitride, used in armour plate
  • A micronutrient fertiliser: without boron plants cannot build cell walls or pollen
  • Doping silicon to make a p-type semiconductor

Curiosities

  • Boron's isotope ratio varies noticeably in nature, so its atomic mass is quoted as an interval rather than a number.
  • Boron nitride exists in a form isostructural with diamond and nearly as hard.
  • Boron burns with a vivid green flame.
  • Boric acid is the oldest cockroach remedy: it destroys their waxy coating.

Position in the table

B