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GUJCET · Chemistry · Electrochemistry

A current of 2 amperes passing through for 5 hours through molten tin salt deposited 22.2 gm of tin. The oxidation state of tin in the salt is __________. (atomic Mass of \(Sn =119\) )

  1. A 1
  2. B 2
  3. C 4
  4. D 3
Verified Solution

Answer & Solution

Correct Answer

(B) 2

Step-by-step Solution

Detailed explanation

B
\(\begin{array}{l}\text { Weight deposited }=\text { Zit } \\ =\frac{M I t}{n F} \\ M=\text { Atomic mass } \\ 1=\text { Current (Ampere) } \\ t=\text { time (sec) } \\ n=\text { number of electron } \\ f=96500 C\end{array}\)

So,
\(\begin{array}{l}
22.2=\frac{119 \times 2 \times 5 \times 3600}{n \times 96500} \\
n=\frac{119 \times 2 \times 5 \times 3600}{22.2 \times 96500} \\
n=1.99 \cong 2\end{array}\)

Reaction is :
\(Sn^{2^{+}}+2 e^{-} \rightarrow Sn\)
Oxidation state of \(\operatorname{Tin}=+2\)