PCl(3) is prepared by the action of Cl(2...

`PCl_(3)` is prepared by the action of `Cl_(2)` on

`P_(2)O_(3)`

`P_(2)O_(5)`

White P

`H_(3)PO_(3)`

Text Solution

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The correct Answer is:

`P_(4)+6Cl_(2)rarr5PCl_(3)`

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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

PCl_(5)(g)hArr PCl_(3)(g)+Cl_(2)(g) , In above reaction, at equilibrium condition mole fraction of PCl_(5) is 0.4 and mole fraction of Cl_(2) is 0.3. Then find out mole fraction of PCl_(3)

In the reaction PCl_(5)(g) hArr PCl_(3)(g)+Cl_(2)(g) , the equilibrium concentrations of PCl_(5) and PCl_(3) are 0.4 and 0.2 mole // litre respectively. If the value of K_(c) is 0.5 , what is the concentration of Cl_(2) in moles // litre ?

Initially, 0.8 mole of PCl_(5) and 0.2 mol of PCl_(30 are mixed in one litre vessel. At equilibrium, 0.4 mol of PCl_(3) is present. The value of K_(c ) for the reaction PCl_(5)(g) hArr PCl_(3)(g)+Cl_(2)(g) would be

1 mole of PCl_(5) taken at 5 atm, dissociates into PCl_(3) and Cl_(2) to the extent of 50% PCl_(5)(g)hArr PCl_(3)(g)+Cl_(2)(g) Thus K_(p) is :

Select the species which are oxidized and reduced in the given reaction PCl_(3) + Cl_(2) to PCl_(5)

In the equilibrium , PCl_(5)hArr PCl_(3)+Cl_(2) starting with 2 mol of PCl_(5) in 5 L flask at 350K , there is 80% dissociation. Hence the equilibrium pressure is

NARAYNA-15TH GROUP ELEMENTS-C.U.Q

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