Concept explainers
Chelating ligands often form more stable complex ions than the corresponding monodentate ligands with the same donor atoms. For example,
where en is ethylenediamine and penten is
This increased stability is called the chelate effect. Based on bond energies, would you expect the enthalpy changes for the above reactions to be very different? What is the order (from least favorable to most favorable) of the entropy changes for the above reactions? How do the values of the formation constants correlate with ∆S°? How can this be used to explain the chelate effect?
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Chapter 21 Solutions
Chemistry (Instructor's)
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