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Q.

A current of 1.70 A is passed through 300 mL of 0.160 solution of ZnSO4 for 230 sec, with a current efficiency of 90%. Find the molarity of Zn2+ after the deposition of Zn. Assume the volume of the solution remains constant during electrolysis

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a

0.15M

b

0.3M

c

0.05M

d

0.1M

answer is B.

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Detailed Solution

Current passed=3.7amp(90%utiliged)

Current utilised= 3.7 X 90100

=3.33 amp

m=32.5 X 3.33 X 23096500

=0.26g of Zn

Before electrolysis

0.16=W161 X 1000300

W=7.75g ZnSO4

161g ZnSO4____65g of Zn

7.75g ZnSO4_____x

x=7.75161 X 65=3.13g of Zn

Mass of Zn+2after electrolysis =3.13-0.26

=2.89

M=2.8965 X 1000300

=0.15M

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