Enthalpy Change Calculator

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Enthalpy Change Calculator

Work out the enthalpy change of a reaction from calorimetry data. Enter your experimental measurements to find ΔH in kJ/mol and see whether the reaction is exothermic or endothermic.

🔥 Exothermic / Endothermic
🧮 q = mcΔT
⚗️ Molar Enthalpy
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Calculate Your Enthalpy Change

Enter the mass, specific heat capacity, temperature change, and moles of limiting reactant from your experiment to calculate the heat released or absorbed and the molar enthalpy change.

Calorimetry Data

Enter your experimental measurements

🌡️ Temperature & Mass
Often approximated as 1 g/mL for dilute aqueous solutions.
⚗️ Reaction Quantity
Used to convert total heat into enthalpy change per mole.

Reaction Evaluation

Calculated heat and enthalpy change

Common Specific Heat Capacities

Typical specific heat capacity values used in calorimetry calculations.

Substance Typical Use Specific Heat Capacity
Water / dilute aqueous solutionNeutralisation, displacement reactions4.18 J/g°C
EthanolCombustion experiments2.44 J/g°C
AluminiumCalorimeter material0.90 J/g°C
CopperCalorimeter material0.39 J/g°C
GlassCalorimeter vessel0.84 J/g°C
⚠️ Important Note: This calculator provides a simplified estimate assuming no heat loss to the surroundings or calorimeter itself. Real experimental values will typically differ from theoretical or literature enthalpy changes due to heat loss and measurement uncertainty.

Enthalpy Change FAQ

Everything you need to know about calculating and interpreting enthalpy change.

Enthalpy change (ΔH) is the amount of heat energy absorbed or released by a chemical reaction at constant pressure. It is usually measured in kilojoules per mole (kJ/mol) of the limiting reactant.

The heat released or absorbed is calculated using q = m × c × ΔT, where m is the mass of the solution, c is its specific heat capacity, and ΔT is the temperature change. The molar enthalpy change is then ΔH = −q ÷ n, where n is the number of moles of the limiting reactant.

An exothermic reaction releases heat to its surroundings, causing the temperature to rise and giving a negative ΔH value. An endothermic reaction absorbs heat from its surroundings, causing the temperature to fall and giving a positive ΔH value.

By convention, ΔH represents the enthalpy of the reacting system. When a reaction releases heat to the surroundings, the system loses energy, so the enthalpy change is recorded as negative, even though the temperature of the surroundings increases.

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