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Using the standard electrode potentials, predict if the reaction between the following is feasible: \\ce{Fe^{3+}_{( aq)}}\ and \\ce{Br^-_{( aq)}}\ - Chemistry

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प्रश्न

Using the standard electrode potentials, predict if the reaction between the following is feasible:

\[\ce{Fe^{3+}_{( aq)}}\] and \[\ce{Br^-_{( aq)}}\]

संख्यात्मक

उत्तर

A reaction is feasible if the value of `"E"_"cell"^Θ` is positive.

The reaction is as follows –

\[\ce{Br^-_{( aq)} + Fe^{3+}_{( aq)} -> 1/2Br2_{( aq)} + Fe^{2+}_{( aq)}}\]

According to this the cell will be as follows –

\[\ce{Br^-_{( aq)} | 1/2Br2_{( aq)} || Fe^{3+}_{( aq)} | Fe^{2+}_{( aq)}}\]

∴ `"E"_("cell")^Θ = "E"_("Fe"^(3+)//"Fe"^(2+))^Θ - "E"_(1/2"Br"_2//"Br"^-)^Θ`

= 0.77 − 1.09

= −0.32 V

Since the value of `"E"_"cell"^Θ` is negative, hence the reaction is not feasible.

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अध्याय 3: Electrochemistry - Exercises [पृष्ठ ९२]

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एनसीईआरटी Chemistry [English] Class 12
अध्याय 3 Electrochemistry
Exercises | Q 17.3 | पृष्ठ ९२

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