179 Introduction
Paul Flowers; Edward J. Neth; William R. Robinson; Klaus Theopold; and Richard Langley
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Learning Objectives
- Precipitation and Dissolution
- Lewis Acids and Bases
- Multiple Equilibria
The mineral fluorite, CaF2(Figure), is commonly used as a semiprecious stone in many types of jewelry because of its striking appearance. Deposits of fluorite are formed through a process called hydrothermal precipitation in which calcium and fluoride ions dissolved in groundwater combine to produce insoluble CaF2 in response to some change in solution conditions. For example, a decrease in temperature may trigger fluorite precipitation if its solubility is exceeded at the lower temperature. Because fluoride ion is a weak base, its solubility is also affected by solution pH, and so geologic or other processes that change groundwater pH will also affect the precipitation of fluorite. This chapter extends the equilibrium discussion of other chapters by addressing some additional reaction classes (including precipitation) and systems involving coupled equilibrium reactions.