On carrying out the electrolysis of acidified water, the volume of hydrogen liberated at `STP` condition is `22.4L`. The volume of oxygen liberated is
a.22.4 L
b.44.8 L
c.11.2 L
d.2.24 L

During electrolysis of water, the volume of oxygen liberated is 2.24 dm^(3). The volume of hydrogen liberated, under same conditions will be

The volume of helium is 44.8 L at

1.2 L of hydrogen and 1.12 L of chlorine are reacted. The composition by volume of mixture is

When the electrolysis of acidified water is carried out : (a) What is the ratio of the volume of hydrogen produced to the volume of oxygen ? Give the equation for the discharge of ions at the two electrodes .

In an electrolysis of acidulated water, 4.48 L of hydrogen at STP was produced by passing a current of 2.14 A. For how many hours was the current passed ?

Calculate the volume of O_(2) liberated at STP by passing 5A current for 193 sec through acidified water.

One gram mole of a gas at STP occupies 22.4 L. This fact is derived from

Using electrolytic method, the cost of production of 5L of oxygen at STP, is Rs X, the cost of production of same volume of hydrogen at STP, will be

What is the amount of O_(2) liberated at STP by ''30 volume'' 1 L solution of H_(2)O_(2) ?

Air contains 21% of oxygen by volume. The number of moles of O_(2) present in 5L of air at STP conditions