🌡️ Thermodynamic Spontaneity & Equilibrium

Gibbs Free Energy Calculator ($\Delta G = \Delta H - T\Delta S$)

Compute change in Gibbs free energy ($\Delta G$), determine chemical reaction spontaneity (exergonic vs endergonic), equilibrium constant ($K_{\text{eq}}$), and crossover temperature ($T_{\text{eq}}$).

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Thermodynamic Parameters
kJ/mol
ΔH < 0 = Exothermic, ΔH > 0 = Endothermic
J / (mol·K)
ΔS > 0 = Increase in disorder / entropy
Change in Gibbs Free Energy (ΔG)
-32.96 kJ/mol
Reaction is Spontaneous (Exergonic) 🟢
Equilibrium ($K_{\text{eq}}$)
5.98 × 10⁵
Entropy Term ($T\Delta S$)
-59.26 kJ/mol
Crossover Temp ($T_{\text{eq}}$)
464.0 K (190.9 °C)
💡 Thermodynamic Behavior:

Because $\Delta H < 0$ and $\Delta S < 0$, the reaction is spontaneous at lower temperatures ($T < 464.0\text{ K}$) and non-spontaneous at elevated temperatures.

The Second Law of Thermodynamics & Gibbs Energy

Gibbs free energy determines whether a reaction occurs without external work:

$$\Delta G = \Delta H - T \Delta S, \quad K_{\text{eq}} = e^{-\frac{\Delta G^\circ}{R T}}$$

$\Delta H$ $\Delta S$ $\Delta G = \Delta H - T\Delta S$ Spontaneity Condition
Negative ($-$) Positive ($+$) Always Negative ($-$) Spontaneous at all temperatures
Positive ($+$) Negative ($-$) Always Positive ($+$) Non-spontaneous at all temperatures
Negative ($-$) Negative ($-$) Negative at low $T$ Spontaneous only at low temperatures ($T < \Delta H/\Delta S$)
Positive ($+$) Positive ($+$) Negative at high $T$ Spontaneous only at high temperatures ($T > \Delta H/\Delta S$)