Lithium nitrate

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Lithium nitrate
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Template:Longitem LiNO3
Molar mass 68.946 g/mol
Appearance White to light yellow solid
Density 2.38 g/cm3
Melting point Template:Chembox CalcTemperatures
Boiling point Template:Chembox CalcTemperatures
Solubility soluble in ethanol, methanol, pyridine, ammonia, acetone
Template:Longitem −62.0·10−6 cm3/mol (+3 H2O)
Template:Longitem 1.735[1]
Template:Longitem 64 J/(mol K)
Template:Longitem 105 J/(mol K)
Template:Longitem −7.007 kJ/g or −482.3 kJ/mol
Template:Longitem 25.5 kJ/mol
NFPA 704 (fire diamond) Template:NFPA 704 diamond
Flash point Template:Chembox CalcTemperatures
Template:Longitem Sodium nitrate
Potassium nitrate
Rubidium nitrate
Caesium nitrate
Template:Longitem Lithium sulfate
Lithium chloride

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Lithium nitrate is an inorganic compound with the formula LiNO3. It is the lithium salt of nitric acid (an alkali metal nitrate). The salt is deliquescent, absorbing water to form the hydrated form, lithium nitrate trihydrate. Its eutectics are of interest for heat transfer fluids.[2]

It is made by treating lithium carbonate or lithium hydroxide with nitric acid.

Uses

This deliquescent colourless salt is an oxidizing agent used in the manufacture of red-colored fireworks and flares.

Thermal storage

The hydrated form, lithium nitrate trihydrate, has an extremely high specific heat of fusion, Script error: No such module "val".,[3] and hence can be used for thermal energy storage at its melt temperature of 303.3 K.[4]

Lithium nitrate has been proposed as a medium to store heat collected from the sun for cooking. A Fresnel lens would be used to melt solid lithium nitrate, which would then function as a "solar battery", allowing heat to be redistributed later by convection.[5]

Synthesis

Lithium nitrate can be synthesized by reacting nitric acid and lithium carbonate.

Li2CO3 + 2 HNO3 → 2 LiNO3 + H2O + CO2

Generally when forming LiNO3, a pH indicator is used to determine when all of the acid has been neutralized. However, this neutralization can also be recognized with the loss of carbon dioxide production.[6] In order to rid the final product of excess water, the sample is heated.

Toxicity

Lithium nitrate can be toxic to the body when ingested by targeting the central nervous system, thyroids, kidneys, and cardio-vascular system.[7] When exposed to the skin, eyes, and mucous membranes, lithium nitrate can cause irritation to these areas.[8]

Further reading

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References

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  1. Pradyot Patnaik. Handbook of Inorganic Chemicals. McGraw-Hill, 2002, Template:ISBN.Script error: No such module "Unsubst".
  2. Wietelmann, Ulrich and Bauer, Richard J. (2005) "Lithium and Lithium Compounds" in Ullmann's Encyclopedia of Industrial Chemistry, Wiley-VCH: Weinheim. Script error: No such module "CS1 identifiers"..
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External links

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