The time required for a constant current of 0.868 A to deposit 0.387 g of Tl(III) as Tl(s) is 2689 s
We'll begin by calculating the quantity of electricity needed to deposit 0.387 g of Ti
Ti³⁺ + 3e —> Ti
Recall:
1 mole of Ti = 48 g
1 electron (e) = 96500 C
Thus,
3 electrons = 3 × 96500 = 289500 C
From the balanced equation above,
48 g of Ti was deposited by 289500 C of electricity.
Therefore,
0.387 g of Ti will be deposited by = (0.387 × 289500) / 48 = 2334.09375 C of electricity
- Finally, we shall determine the time required.
Quantity of electricity (Q) = 2334.09375 C
Current (I) = 0.868 A
Time (t) =?
t = Q / I
t = 2334.09375 / 0.868
t = 2689 s
Therefore, the time required for the reaction is 2689 s
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