A current of 2 ampere passing for 5 hr through a molten tin salt deposits 22.2 g of tin. Find the oxidation number of tin (atomic weight of tin is 118.7) in the salt

A current of 0.5 ampere when passed through AgNO_(3) solution for 193 seconds deposited 0.108 g. of silver. The equivalent weight of Ag is

One ampere of current is passed for 9650s through molten AlCl_(3) . What is the weight, in gram, of Al deposited at cathode?(atomic weight of Al =27)

3 ampere current was passed through an aqueous solution of an unknown salt of Pd for 1 hr 2.977 g of Pd^(n+) was deposited at cathode. Find the value of n. (atomic weight of Pd is 106.4)

When 3.86 amperes current are passed through an electrolyte for 50 minutes, 2.4 gr of a divalent metal is deposited. The gram atomic weight of the metal (in grams) is

One ampere of current is passed for 9650 sec. through molten AlCl_(3) . What is the weight is grams of Al deposited at cathode ?

When X amperes of current is passed through molten for 96.5s, 0.09 g of aluminium is deposited. What is the value of X?

When 6 xx 10^22 electrons are used in the electrolysis of a metallic salt, 1.9 gm of the metal is deposited at the cathode. The atomic weight of that metal is 57. So oxidation state of the metal in the salt is

A current of 5 amp is passed through molten CaCl_(2) for 2 hrs. Calculate the mass of metal as well as mass of non-metal liberated.

A current of dry air is passed through the above apparatus containing two sets of bulbs . One set of bulbs is filled with the solution and second with the solvent . Finally that is attched with a U-tube containing CaCl_(2) , which is very efficient in absorbing the water vapour. Passing of dry air through all these three causes some change in weight. Dry air was passed through solution of 5g of solute in 80g of water and the passed thriugh pure water . The loss in weight of solution was 2.5g and that of pure water was 0.04g . The molecular mass of solute is

Same quantity of electrical charge that deposited 0.583 g of silver was passed through a solution of gold salt. If 0.335 g of gold is deposited, calculate the oxidation state of gold in the given salt. At wt of Au = 197.