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MHT CET · Chemistry · Electrochemistry

Calculate the mass of ' Ca ' deposited at cathode by passing 0.8 ampere current through molten \(\mathrm{CaCl}_2\) in 60 minutes.
[Molar mass of \(\mathrm{Ca}=40 \mathrm{~g} \mathrm{~mol}^{-1}\) ]

  1. A 0.4 g
  2. B 0.5 g
  3. C 0.6 g
  4. D 0.7 g
Verified Solution

Answer & Solution

Correct Answer

(C) 0.6 g

Step-by-step Solution

Detailed explanation

\(\begin{aligned} & \mathrm{Ca}_{(\mathrm{aq})}^{2+}+2 \mathrm{e}^{-} \longrightarrow \mathrm{Ca}_{(\mathrm{s})} \\ & \text { Mole ratio }=\frac{1 \mathrm{~mol}}{2 \mathrm{~mol} \mathrm{e}^{-}} \\ & \mathrm{W}=\frac{\mathrm{I}(\mathrm{A}) \times \mathrm{t}(\mathrm{s})}{96500\left(\mathrm{C} / \mathrm{mole}^{-}\right)} \times \text {mole ratio } \times \mathrm{M}_{\mathrm{Ca}} \\ & =\frac{0.8 \times 60 \times 60}{96500} \times \frac{1}{2} \times 40=0.6 \mathrm{~g}\end{aligned}\)