Hydrogen peroxide decomposes to water and oxygen at constant pressure by the following reaction: 2H2O2 (l) . 2H2O (l) + O2 (g) .H = -196 kJ Calculate the value of q (kJ) in this exothermic reaction when 4.00 g of hydrogen peroxide decomposes at constant pressure?

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Thermochemistry is the study of heat energy associated with chemical reactions and phase changes.  Thermochemistry involves the following concepts: Heat of reaction: Also known as the enthalpy of reaction, this looks at the overall heat energy that occurs in a reaction. Enthalpy: The heat content of a system. Hess's law: A principle in general chemistry that states that the change in enthalpy for a reaction is independent of path and depends only on initial and final states. Closed system: A thermodynamic system that exchanges neither energy nor matter with its surroundings. A covered... Show more

Hydrogen peroxide decomposes to water and oxygen at constant pressure by the following reaction: <br>2H<sub>2</sub>O<sub>2</sub> (l) . 2H<sub>2</sub>O (l) + O<sub>2</sub> (g) .H = -196 kJ <br>Calculate the value of q (kJ) in this exothermic reaction when 4.00 g of hydrogen peroxide decomposes at constant pressure?