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Worked Examples · Example 10.2

Q.The E⊖ for Cl2/Cl- is +1.36, for I2/I- is + 0.53, for Ag+/Ag is +0.79, Na+/Na is –2.71 and for Li+/Li is – 3.04. Arrange the following ionic species in decreasing order of reducing strength:
I-, Ag, Cl-, Li, Na

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Step 1: Pair each species with its redox couple and E⊖E^\ominus

CoupleE⊖E^\ominus / VReduced species (given)
Li+^+/Li−3.04-3.04Li
Na+^+/Na−2.71-2.71Na
Ag+^+/Ag+0.79+0.79Ag
I2_2/I−^-+0.53+0.53I−^-
Cl2_2/Cl−^-+1.36+1.36Cl−^-

Step 2: Apply the rule

The reduced species of a couple with a more negative (or less positive) standard reduction potential loses electrons more readily and is therefore the stronger reducing agent.

Step 3: Rank from most negative to most positive E⊖E^\ominus …

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