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Haber-Bosch Process
Charlie

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Charlie

20. août 2026DE
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Haber-Bosch Process

Bread from air. Nitrogen makes up most of the atmosphere but plants cannot touch it, because the triple bond holding N₂ together is one of the strongest in chemistry. Before 1913 the world's fixed nitrogen came from guano deposits, Chilean nitrate beds and lightning, and agricultural chemists were openly predicting famine as those ran down. Fritz Haber showed in 1909 that nitrogen and hydrogen would combine over a catalyst at high pressure; Carl Bosch spent four years turning a bench apparatus into plant that could hold 200 atmospheres at 450 °C, and BASF's Oppau works started up in 1913. Roughly half the nitrogen in your body arrived through this process. It also made Germany self-sufficient in explosives, which is part of the same story and cannot honestly be separated from it. This is documented industry — the pressures involved put it far beyond any workshop.
Avancé
1 hour

Consignes

1

The bond that makes it hard

Atmospheric nitrogen is abundant and almost completely unreactive.

  1. N₂ is held by a triple bond of about 945 kJ/mol.
  2. Almost nothing at ordinary conditions will break it.
  3. Only lightning and certain bacteria fix nitrogen naturally.
The atmosphere above one hectare holds tens of thousands of tonnes of nitrogen, and a crop growing under it can starve for want of nitrogen. Abundance and availability are not the same thing.
2

Fighting the equilibrium

The reaction is reversible, and the conditions that help one way hurt the other.

N₂ + 3 H₂ ⇌ 2 NH₃ (exothermic)

  1. Four molecules become two, so high pressure pushes toward ammonia.
  2. It gives out heat, so low temperature favours ammonia at equilibrium.
  3. But low temperature makes the reaction unusably slow.
That is the trap. Thermodynamics wants it cold and kinetics wants it hot, and no choice of temperature alone gives a workable answer. The catalyst is what breaks the deadlock, by making a moderate temperature fast enough.

Matériaux pour cette étape :

NitrogenNitrogen1 cylinder
HydrogenHydrogen3 cylinder
3

The catalyst and the conditions

The compromise, roughly as run today.

  1. Temperature 400-500 °C.
  2. Pressure 150-250 atmospheres.
  3. Catalyst: iron, from reduced magnetite, promoted with potassium and aluminium oxides.
  4. Unreacted gas is separated and recycled.
Single-pass conversion is only about 15%, which sounds poor. Recycling is what makes it economic — the gas goes round until it is used, so the overall conversion is high even though each pass is not.

Matériaux pour cette étape :

Pressure GaugePressure Gauge1 pièce
4

Where the hydrogen comes from

Nitrogen is free from the air. Hydrogen is not, and it dominates the process's footprint.

  1. Today it is made mostly by steam reforming natural gas: CH₄ + H₂O → CO + 3 H₂.
  2. Early plants used coal and water gas instead.
  3. Nitrogen comes from air separation.
This is why ammonia is a fossil-fuel product and why its CO₂ burden is large: the carbon comes out of the hydrogen feedstock, not out of the ammonia reaction. Ammonia synthesis accounts for roughly 1-2% of world energy use.
5

History and context

Fritz Haber, at Karlsruhe, demonstrated a bench apparatus producing ammonia continuously in July 1909 — a few grams an hour, at pressure, over an osmium catalyst. Carl Bosch at BASF took on the scale-up, which was arguably the harder problem: no vessel then existing could hold hundreds of atmospheres at red heat, because hydrogen at those conditions attacks steel and embrittles it. Bosch's answer was a lined double-walled reactor with a soft iron inner liner and a vented outer shell. Alwin Mittasch tested thousands of catalyst formulations to replace scarce osmium with iron. The Oppau plant started in 1913. Both Haber and Bosch received Nobel Prizes, in 1918 and 1931.

The honest accounting. Nitrogen fertiliser is estimated to sustain around half the world's population; without it, current global agriculture is not possible. The same plants made nitric acid for explosives, which allowed Germany to continue fighting the First World War after the Allied blockade cut off Chilean nitrate. Haber also personally directed Germany's chemical weapons programme and was present at the first chlorine attack at Ypres in 1915; his wife Clara Immerwahr, herself a chemist, killed herself days afterwards. Haber, who was Jewish, was driven out of Germany in 1933 and died in exile the following year.

The environmental tail. Nitrogen that runs off fields drives algal blooms and coastal dead zones, and nitrous oxide from soils is a potent greenhouse gas. Fixing more nitrogen than the biosphere does is a genuinely new condition for the planet.

Why there is no build here. 200 atmospheres at 450 °C in a hydrogen atmosphere is not a scale that can be reduced. There is no honest bench version, and the related blueprints on the Solvay process and on lime give safe examples of industrial chemistry that can be shown.

Matériaux

3

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