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⚖️ Chemical & Ionic Equilibrium

Equilibrium chemistry represents the delicate balancing point where forward and backward reaction rates match. In competitive examinations, it is arguably the single highest-yield topic in physical chemistry, spanning coupled equilibria, buffer capacity bounds, simultaneous precipitation, and indicator selection.


1. 🔄 Chemical Equilibrium & Le Chatelier's Principle

1.1 Equilibrium Constant Formulations

For the general reaction aA+bBcC+dD:

Kc=[C]c[D]d[A]a[B]b,Kp=(PC)c(PD)d(PA)a(PB)bKp=Kc(RT)Δng,Kx=KpPΔng

where Δng=(c+d)(a+b) (gaseous species only).

1.2 Le Chatelier's Principle: Inert Gas Addition Matrix

PerturbationCondition Δng>0 (PCl5PCl3+Cl2)Condition Δng<0 (N2+3H22NH3)Condition Δng=0 (H2+I22HI)
Inert Gas added at Constant Volume (V=const)NO EFFECT (partial pressures unchanged)NO EFFECTNO EFFECT
Inert Gas added at Constant Pressure (P=const)Shifts FORWARD (towards more moles)Shifts BACKWARD (towards fewer moles)NO EFFECT
Increasing Total Pressure (Decreasing Volume)Shifts BACKWARDShifts FORWARDNO EFFECT
Increasing TemperatureIf ΔH>0 shifts FORWARD; If ΔH<0 shifts BACKWARD

2. 💧 Ionic Equilibrium & pH Formulations

2.1 The Autoionization of Water

2H2OH3O++OHKw=[H+][OH]=1.0×1014 at 25C

Note: As temperature increases (T=90C), Kw1012pH of neutral pure water =6.0. Pure water at 90C is neutral, NOT acidic!

2.2 Ostwald's Dilution Law (Weak Monoprotic Acid HA)

HAH++A(C(1α),Cα,Cα)Ka=Cα21αα=KaC(valid when α0.05)[H+]=Cα=KaCpH=12[pKalogC]

When C106 M

For very dilute acid solutions (e.g., 108 M HCl), water's autoionization [H+]w cannot be neglected:

[H+]total=108+[H+]w[H+]2108[H+]1014=0[H+]=1.05×107 MpH=6.98

3. 🛡️ Buffer Solutions & Henderson-Hasselbalch Equation

A buffer solution resists changes in pH upon addition of small amounts of strong acid or base.

3.1 Acidic Buffer (Weak Acid + Its Conjugate Base / Salt)

HA+H2OH3O++ApH=pKa+log([Conjugate Base A][Weak Acid HA])=pKa+log([Salt][Acid])
  • Maximum Buffer Capacity: Occurs when [Salt]=[Acid]pH=pKa.
  • Effective Buffer Operating Range: pH=pKa±1.

3.2 Basic Buffer (Weak Base + Its Conjugate Acid / Salt)

pOH=pKb+log([Salt][Base])pH=14pOH

4. 🧪 Salt Hydrolysis Master Matrix

Salt CategoryExampleHydrolyzing IonHydrolysis Constant KhDegree of Hydrolysis hFinal pH Formula at 25C
Strong Acid + Strong BaseNaCl,KNO3None (Neutral)No hydrolysis0pH=7.00
Weak Acid + Strong BaseCH3COONaAnion (A)Kh=KwKah=KwKaCpH=7+12[pKa+logC]
Strong Acid + Weak BaseNH4ClCation (B+)Kh=KwKbh=KwKbCpH=712[pKb+logC]
Weak Acid + Weak BaseCH3COONH4Both Cation & AnionKh=KwKaKbh=KwKaKbpH=7+12[pKapKb] (Independent of C!)

5. 🧊 Solubility Product (Ksp) & Simultaneous Equilibria

For a sparingly soluble salt AxByxAy++yBx:

Ksp=[Ay+]x[Bx]y=(xs)x(ys)y=xxyysx+y
  • For 1:1 salt (AgCl): Ksp=s2s=Ksp.
  • For 1:2 or 2:1 salt (Ag2CrO4,PbCl2): Ksp=4s3s=(Ksp/4)1/3.
  • For 1:3 salt (Al(OH)3,Fe(OH)3): Ksp=27s4s=(Ksp/27)1/4.
  • For 2:3 salt (Ca3(PO4)2): Ksp=108s5s=(Ksp/108)1/5.

5.1 Common Ion Effect & Precipitation Criterion

  • Condition for Precipitation: Ionic Product (Qsp>Ksp).
  • Unsaturated Solution: Qsp<Ksp (more salt dissolves).
  • Saturated Dynamic Equilibrium: Qsp=Ksp.