Schikorr reaction
The Schikorr reaction formally describes the conversion of the iron(II) hydroxide into iron(II,III) oxide. This transformation reaction was first studied by Gerhard Schikorr. The global reaction follows:
It is of special interest in the context of the serpentinization, the formation of hydrogen by the action of water on a common mineral.
Reaction mechanism
The Schikorr reaction can be viewed as two distinct processes:- the anaerobic oxidation of two Fe into Fe by the protons of water. The reduction of two water protons is accompanied by the production of molecular hydrogen, and;
- the loss of two water molecules from the iron and iron hydroxides giving rise to its dehydration and to the formation of a thermodynamically more stable phase iron oxide.
to give:
Adding to this reaction one intact iron ion for each two oxidized iron ions leads to:
Electroneutrality requires the iron cations on both sides of the equation to be counterbalanced by 6 hydroxyl anions :
For completing the main reaction, two companion reactions have still to be taken into account:
The autoprotolysis of the hydroxyl anions; a proton exchange between two OH−, like in a classical acid–base reaction:
it is then possible to reorganize the global reaction as:
Considering then the formation reaction of iron(II,III) oxide:
it is possible to write the balanced global reaction:
in its final form, known as the Schikorr reaction:
Occurrences
The Schikorr reaction can occur in the process of anaerobic corrosion of iron and carbon steel in various conditions.Anaerobic corrosion of metallic iron to give iron hydroxide and hydrogen:
followed by the Schikorr reaction:
give the following global reaction:
At low temperature, the anaerobic corrosion of iron can give rise to the formation of "green rust" an unstable layered double hydroxide. In function of the geochemical conditions prevailing in the environment of the corroding steel, iron hydroxide and green rust can progressively transform in iron oxide, or if bicarbonate ions are present in solution, they can also evolve towards more stable carbonate phases such as iron carbonate, or iron(II) hydroxycarbonate 2 isomorphic to copper(II) hydroxycarbonate 2 in the copper system.
Application fields
Anaerobic oxidation of iron and steel commonly finds place in oxygen-depleted environments, such as in permanently water-saturated soils, peat bogs or wetlands in which archaeological iron artefacts are often found.Anaerobic oxidation of carbon steel of canisters and overpacks is also expected to occur in deep geological formations in which high-level radioactive waste and spent fuels should be ultimately disposed. Nowadays, in the frame of the corrosion studies related to HLW disposal, anaerobic corrosion of steel is receiving a renewed and continued attention. Indeed, it is essential to understand this process to guarantee the total containment of HLW waste in an engineered barrier during the first centuries or millennia when the radiotoxicity of the waste is high and when it emits a significant quantity of heat.
The question is also relevant for the corrosion of the reinforcement bars in concrete. This deals then with the service life of concrete structures, amongst others the near-surface vaults intended for hosting low-level radioactive waste.