मराठी

Find out the value of equilibrium constant for the following reaction at 298 K, 2NHA3A(g)+COA2A(g)↽−−⇀NHA2−COONHA2A(aq)+HA2OA(l) Gibbs Standard energy change 298 K = –13.6 kJ mol−1. -

प्रश्न

Find out the value of equilibrium constant for the following reaction at 298 K, \[\ce{2NH3_{(g)} + CO2_{(g)} ⇌ NH2 - COONH2_{(aq)} + H2O_{(l)}}\] Gibbs Standard energy change 298 K = –13.6 kJ mol⁻¹.

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उत्तर

Given: Δ⁰G = -13.6 kJ mol^-1

R = 8.314 JK^-1mol^-1, T = 298 K.

\[\ce{2NH3_{(g)} + CO2_{(g)} ⇌ NH2 - COONH2_{(aq)} + H2O_{(l)}}\]

Δ⁰G = `-2.303nRTlogK`

`log K = (-13.6xx10^3)/(2.303xx8.314xx298)`

`logK=2.38`

`K="Antilog"(2.38)`

`= 239.9 ≈ 240`

`K = 2.40xx10^2`

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Spontaneous (Irreversible) Process

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Find out the value of equilibrium constant for the following reaction at 298 K, 2NHA3A(g)+COA2A(g)↽−−⇀NHA2−COONHA2A(aq)+HA2OA(l) Gibbs Standard energy change 298 K = –13.6 kJ mol−1. -

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Find out the value of equilibrium constant for the following reaction at 298 K, 2NHA3A(g)+COA2A(g)↽−−⇀NHA2−COONHA2A(aq)+HA2OA(l) Gibbs Standard energy change 298 K = –13.6 kJ mol−1. -

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