Calculate the standard enthalpy change (∆H°) for the reaction of the coordination compound [Co(NH3)6]Cl3 (aq) with NaOH (aq) to produce [Co(NH3)6](OH)3 (aq) and NaCl (aq). Given, the standard enthalpy of formation (∆H°f) for [Co(NH3)6]Cl3, [Co(NH3)6](OH)3 and NaCl are -784.8 kJ/mol, -1273.6 kJ/mol and -411.2 kJ/mol, respectively.

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Calculate the standard enthalpy change (∆H°) for the reaction of the coordination compound [Co(NH3)6]Cl3 (aq) with NaOH (aq) to produce [Co(NH3)6](OH)3 (aq) and NaCl (aq). Given, the standard enthalpy of formation (∆H°f) for [Co(NH3)6]Cl3, [Co(NH3)6](OH)3 and NaCl are -784.8 kJ/mol, -1273.6 kJ/mol and -411.2 kJ/mol, respectively.

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SummerGorsuc · Answer 1 · 2025-02-03T14:04:36+0000

To calculate the standard enthalpy change H for the reaction, we can use the following equation:H = Hf products - Hf reactants The balanced chemical equation for the reaction is:[Co NH3 6]Cl3 aq + 3 NaOH aq [Co NH3 6] OH 3 aq + 3 NaCl aq Now, we can plug in the given standard enthalpies of formation Hf for each compound:H = 1 -1273.6 kJ/mol + 3 -411.2 kJ/mol - 1 -784.8 kJ/mol H = -1273.6 - 1233.6 - -784.8 H = -2507.2 + 784.8H = -1722.4 kJ/molThe standard enthalpy change H for the reaction is -1722.4 kJ/mol.

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