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Q.Most lithium salts are hydrated. Why?

Andhra Pradesh BieapBIEAP Intermediate Board (1st Year) 2024Subjective· 2mImportance★★★★★
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Lithium's small ionic size gives Li+ an unusually high charge density, so it hydrates strongly — most lithium salts are found as hydrates (e.g. LiCl.2H2O).

Lithium is the smallest alkali metal, and its cation Li+ (ionic radius ~76 pm) is by far the smallest of the Group 1 cations. Charge density (charge/size) of an ion determines how strongly it can polarise and attract the negative (oxygen) end of surrounding water dipoles.

Because Li+ has a very small radius carrying a full unit positive charge, its charge density and hence its polarising power are much higher than the other alkali metal ions (Na+, K+, ...). This lets Li+ attract water molecules strongly around itself, releasing a large hydration enthalpy in the process. As a result:

  • Li+ in aqueous solution and in many of its salts is surrounded by a firmly held shell of water molecules.
  • Most lithium salts crystallise as hydrates (e.g. LiCl.2H2O, LiClO4.3H2O), unlike the corresponding sodium/potassium salts which are often anhydrous. …

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