Home
Class 12
CHEMISTRY
In electrolysis charge passed through el...

In electrolysis charge passed through electrolytic cell is equal to

A

Current (ampere)

B

time(seconds)

C

Product of (1) and (2)

D

none of the above

Text Solution

AI Generated Solution

The correct Answer is:
To determine the charge passed through an electrolytic cell during electrolysis, we can use the relationship between current, time, and charge. Here’s a step-by-step solution: ### Step-by-Step Solution: 1. **Understanding Charge (Q)**: - In electrolysis, the charge (Q) passed through the electrolytic cell is a key concept. Charge is represented by the symbol Q. 2. **Formula for Charge**: - The charge can be calculated using the formula: \[ Q = I \times T \] - Where: - \( Q \) = Charge (in Coulombs) - \( I \) = Current (in Amperes) - \( T \) = Time (in seconds) 3. **Units of Measurement**: - Current (I) is measured in Amperes (A). - Time (T) is measured in seconds (s). - When you multiply Amperes by seconds, the result is in Coulombs (C), which is the unit of charge. 4. **Conclusion**: - Therefore, the charge passed through the electrolytic cell during electrolysis can be expressed as: \[ Q = I \times T \] - This means that the total charge is directly proportional to both the current flowing through the cell and the duration of time for which the current flows. ### Final Answer: The charge passed through the electrolytic cell is equal to \( Q = I \times T \). ---
Promotional Banner

Similar Questions

Explore conceptually related problems

Exactly 0.2 mole electrons are passed through two electrolytic cells in series containing CuSO_(4) and ZnSO_(4) respectively. How many grams of each metal will be deposited on the respective cathodes in the two cells ?

In an electrolytic cell

When electricity is passed through an electrolyte

Exactly 0.4 faraday electric charge is passed through three electrolytic cells in series, first containing AgNO_(3) , second CuSO_(4) and third FeCl_(3) solution. How many grams of each metal will be deposited assuming only cathodic reaction in each cell ?

In an electrolytic cell :

One faraday of charge was passed through the electrolytic cells placed in series containing solution of Ag^(+), Ni^(2+) " and " Cr^(3+) respectively. The amount of Ag (At. mass 108), Ni (At. mass 50) and Cr(At. mass 52) deposited will be:

If same quantity of electricity is passed through three electrolytic cells containing FeSO_(4),Fe_(2)(SO_(4))_(3) , and Fe(NO_(3))_(3) , then