In a solution of `CuSO_(4)` how much time will be required to preciitate 2 g copper by 0.5 ampere current?

Question

In a solution of `CuSO_(4)` how much time will be required to preciitate 2 g copper by 0.5 ampere current?

In a solution of `CuSO_(4)` how much time will be required to preciitate 2 g copper by 0.5 ampere current?
A. 12157.48sec
B. 102sec
C. 510sec
D. 642sec

Monjur Alahi

4 views

2025-01-04 04:42

1 Answers

Related Questions

How much quantity of electricity has to be passed through 200 mL of 0.5 M `CuSO_(4)` solution to completely deposite copper ?

2 Answers 4 Views

A current of 2.6 ampere was passed through `CuSO_(4)` solution for 380 sec . The amount of Cu deposited is (atomic mass of Cu 63.5)

2 Answers 4 Views

On passing a current of 1.0 ampere for 16 min and 5 sec through one litre solution of `CuCl_(2)` , all copper of the solution of `CuCl_(2)` solution w

2 Answers 4 Views

What current strength in ampere will be required to liberate 5 g of iodine from potassium iodide solution in 30 minutes ?

2 Answers 6 Views

Mass of copper deposited by the passage of 2 A of current for 965 seconds through a 2M solution of `CuSO_(4)` is (At.mass of Cu = 63.5)

2 Answers 5 Views

How much quantity of electricity has to be passed through 200ml of 0.5 M `CuSO_(4)` solution to completely deposit copper?

2 Answers 5 Views

A current liberates 0.504 g of hydrogen in 2 hours, the amount of copper lib erated from a solution `CuSO_(4)` by the same current flowing for the sam

2 Answers 9 Views

A current of 0.4 ampere is passed for 30 minutes through a voltameter containing `CuSO_(4)` solution. The weight of Cu dpeosited will be

2 Answers 4 Views

Electrolysis of dilute aqueous NaCl solution was carried out by passing 10 milli ampere current. The time required to liberate 0.01 mol of `H_(2)` gas

2 Answers 4 Views

Calculate the time to deposit 1.27 g of copper at cathode when a current of 2A was passed through the solution of `CuSO_(4)`. `("Molar mass of "Cu=63.

2 Answers 7 Views

Salim Ahmed Kawsar · Accepted Answer · 2023-02-05T15:29:48+06:00

Salim Ahmed Kawsar

Correct Answer - A
`Cu^(3+)+underset(2"mole 2F")(2e^(-))rarrunderset("1mole" 63.4gm)(Cu)`
To deposit 63.5gm of copper, electricity needed
`=2xx96500C`
To d eposit 2 gm of copper, electricity needed
`=2xx(96500)/(63.5)xx2=6078.74C`
`Q=6078.74C`
`1=0.5` ampere
Q=It
t(in seconds)`=(Q)/(1)=(6078.74)/(0.5)=12157.48s`

4 views Answered 2023-02-05 15:29