Which of the following pieces of deposited if a current of 10A was passed through a solution of copper(ll) salt for 965 seconds? (1F = 96500 C)
0.005 mole
0.025 mole
0.05 mole
1.00 mole
1.05 mole
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Q=IT, 10*965=9650c
cu+2e=cu^2+
2F contain 64g of cu
2*96500=193,000
193,000 contain 64g of cu
9650 will contain 9650*64/193,000
= 3โข2 mass of cu deposited
mole= mass of cu deposited/ m.m
mole=3.2/64
=0.05 mole
To find the number of moles of copper deposited, we can use the formula:
m = Q / (Fรz)
where:
m = mass of substance deposited (in grams)
Q = total electric charge passed (in coulombs)
F = Faraday's constant (96500 C/mol)
M = molar mass of the substance (in grams/mol)
z = number of electrons transferred per ion
Given values:
Q = current (I) ร time (t) = 10 A ร 965 s = 9650 C
F = 96500 C/mol
M = molar mass of copper (Cu) = 63.55 g/mol
z = 2 (since copper(II) ions have a +2 charge)
To find the number of moles of copper deposited, we can use the formula:
moles = Q / (F ร z)
Given values:
Q = 9650 C
F = 96500 C/mol
z = 2
Now, let's plug in the values:
moles = Q / (F ร z)
= 9650 C / (96500 C/mol ร 2)
= 9650 C / 193000 C/mol
= 0.05 mol
Therefore, the number of moles of copper deposited is 0.05 mol.
