For `PCl_5(g)⇌PCl_3(g)+Cl_2(g)` at equilibrium, `K_p = P/3` , where P is equilibrium pressure. Then degree of dissociation of `PCl_5` at that temperature is ?

Phosphorus pentachloride dissociates as follows in a closed reaction vessel PCl_5 (g) hArr PCl_3 (g) + Cl_2( g) If total pressure at equilibrium of the reaction mixture is P and degree of dissociation of PCl_5 is x, the partial pressure of PCl_3 will be.

At 200^(@)C PCl_(5) dissociates as follows : PCl_(5)(g0hArrPCl_(3)(g)+Cl_(2)(g) It was found that the equilibrium vapours are 62 times as heavy as hydreogen .The degree of dissociation of PCl_(5) at 200^(@)C is nearly :

The vapour density of PCl_(5) at 43K is is found to be 70.2 . Find the degree of dissociation of PCl_(5) at this temperature.

For the equilibrium PCl_5(g)hArr PCl_3(g) +Cl_2 , the value of the equilibrium constant decreases on additions of Cl_2 gas.

For the reaction PCl_(5)(g)hArr PCl_(3)(g)+Cl_(2)(g) , the equation connecting the degree of dissociation (alpha) of PCl_(5)(g) with the equilibrium constant K_(p) is

Express the rate of following reactions PCl_5 to PCl_3 +Cl_2

The system PCl_(5)(g) hArr PCl_(3)(g)+Cl_(2)(g) attains equilibrium. If the equilibrium concentration of PCl_(3)(g) is doubled, the concentration of Cl_(2)(g) would become

The volume percentage of Cl_2 at equilibrium in the dissociation of PCl_5 under a total pressure of 1.5atm is (Kp = 0.202) ,