Heat of Neutralisation of strong Acid and strong base is $- 57 K J$ . The amount of heat released when $0.5 m o l e$ of $H N O_{3}$ solution is added to $0.2 m o l e$ of $N a O H$ solution is

The enthalpy of neutralization of $H C l$ and $N a O H$ is $- 57 k J m o l^{- 1}$ . The heat evolved at constant pressure (in kJ) when $0.5 m o l e$ of H2SO4 react with $0.75 m o l e$ of $N a O H$ is equal to

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Heat of neutralisation for the given reaction NaOH+HCl→NaCl+H2O is 57.9 kJ/mole. What will be the heat released when 0.75 moles of NaOH is titrated against 1.25 moles of HCl?

The correct option is C 43.42 kJGiven : NaOH+HCl→NaCl+H2O Heat of neutralization for 1 mole of HCl and NaOH is 57.9 kJ/mole. Here, NaOH is the limiting reagent and decides the extent of reaction. So, heat of neutralization for 0.75 mole of reactant NaOH is 0.75 mol×57.9 kJ/mole = 43.42 kJ

Heat of neutralisation for the given reaction $N a O H + H C l \to N a C l + H_{2} O$ is $57.9 k J / m o l e$ . What will be the heat released when 0.75 moles of $N a O H$ is titrated against 1.25 moles of $H C l$ ?