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Q.Derive the relation between Kp and Kc. OR

(a) Define pH Scale and write its two applications.
(b) Define common ion effect and write its two applications.
Madhya Pradesh MpbseMP Board Higher Secondary (Class 11) 2018Subjective· 4mImportance★★★★★
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Using PV = nRT to convert partial pressure into concentration for each gaseous species in an equilibrium, Kp works out to Kc(RT)^Δn, where Δn is the change in the number of moles of gas across the reaction.

Consider a general gaseous equilibrium: aA(g) + bB(g) ⇌ cC(g) + dD(g)

The equilibrium constant in terms of partial pressures:

Kp = [P_C^c · P_D^d] / [P_A^a · P_B^b]

For an ideal gas, PV = nRT ⇒ P = (n/V)RT = [conc.]·RT, so each partial pressure can be written as concentration × RT:

Kp = { [C]^c[D]^d / ([A]^a[B]^b) } × (RT)^{(c+d)-(a+b)}

= Kc × (RT)^Δn

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