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Calculate the number of coulombs required to deposit 5.4 g of Al when the electrode reaction is: Al^3 + 3e^– + Al. (Given: Atomic mass of Al = 27 g mol^−1, F = 96500 C mol^−1)

Question

Calculate the number of coulombs required to deposit 5.4 g of Al when the electrode reaction is Al₃ + 3e^– + Al.
(Given: Atomic mass of Al = 27 g mol⁻¹, F = 96500 C mol⁻¹)

Numerical

Solution

\[\ce{\underset{(1 mole 27g)}{Al^3+} + \underset{3F}{3e^-} ->{Al}}\]

To deposite 27 g of Al, electricity required = 3 × 96500

= 289500 C

and to deposit 5.4 g of Al, electricity required = `289500/27 xx 5.4`

= 57900 C

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Collision Theory of Chemical Reactions

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Q 3.67 Q 3.66 (iii)Q 3.68

Chapter 2: Electrochemistry - REVIEW EXERCISES [Page 179]

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Nootan Chemistry [English] Class 12 ISC

Chapter 2 Electrochemistry
REVIEW EXERCISES | Q 3.67 | Page 179

2015-2016 (March) (with solutions)

Q 1.c.iii | 1 mark

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Calculate the number of coulombs required to deposit 5.4 g of Al when the electrode reaction is: Al^3 + 3e^– + Al. (Given: Atomic mass of Al = 27 g mol^−1, F = 96500 C mol^−1)

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Calculate the number of coulombs required to deposit 5.4 g of Al when the electrode reaction is: Al^3 + 3e^– + Al. (Given: Atomic mass of Al = 27 g mol^−1, F = 96500 C mol^−1)

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