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Enthalpy - Energy Processes Simplified Revision Notes

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Enthalpy - Energy Processes

Introduction to Enthalpy

Enthalpy (H): The total heat content of a system, is a fundamental property in thermochemistry.

  • Enthalpy assesses the total heat in a system, reflecting its current state. It is crucial for identifying energy changes during chemical reactions.
chatImportant

Enthalpy Change (ΔH): The heat absorbed or released at constant pressure.

  • Determines the heat exchange during reactions, helping classify them as either exothermic or endothermic.

Exothermic vs. Endothermic Reactions

  • Exothermic Reactions:

    • Release heat (negative ΔH).
    • Example: C3H8+5O23CO2+4H2OC_3H_8 + 5O_2 \rightarrow 3CO_2 + 4H_2O
  • Endothermic Reactions:

    • Absorb heat (positive ΔH).
    • Example: H2O(s)H2O(l)H_2O_{(s)} \rightarrow H_2O_{(l)}

Enthalpy Change Formula

chatImportant

ΔH=HproductsHreactants\Delta H = H_{\text{products}} - H_{\text{reactants}}

  • This is determined by subtracting the enthalpy of reactants from that of the products.

The Application of Hess's Law

Hess's Law: The total change in enthalpy of a chemical reaction is independent of its pathway.

  • Utilises known enthalpy changes to estimate energy changes that are challenging to measure directly.

Photosynthesis

  • Definition: Photosynthesis is an endothermic process converting carbon dioxide and water into glucose and oxygen.
  • It absorbs energy, illustrating its endothermic nature.

Chemical Equation

  • Balanced Reaction:

    6CO2+6H2O+light energyC6H12O6+6O26CO_2 + 6H_2O + \text{light energy} \rightarrow C_6H_{12}O_6 + 6O_2

    • ΔH = +2814 kJ/mol.

Stages Involved

Light-dependent Reactions

  • Occur in thylakoid membranes, capturing light energy via chlorophyll.

Calvin Cycle

  • Takes place in the stroma.
  • ATP and NADPH facilitate glucose synthesis.

Factors Influencing ΔH

  • The wavelength of light, temperature, and environmental conditions affect the efficiency of photosynthesis.

Diagram of photosynthesis

Respiration

  • Definition: Cellular respiration is an exothermic process that releases energy by breaking down glucose.

Chemical Equation

  • Balanced Reaction:

    C6H12O6+6O26CO2+6H2O+energyC_6H_{12}O_6 + 6O_2 \rightarrow 6CO_2 + 6H_2O + \text{energy}

    • ΔH = -2814 kJ/mol.

Biochemical Pathways

Glycolysis

  • Converts glucose into pyruvate, releasing small amounts of energy.

Krebs Cycle

  • Produces NADH and FADH₂.

Oxidative Phosphorylation

  • Occurs in mitochondria, generating ATP through the electron transport chain.

Influence of Conditions

  • Temperature affects enzyme activity.
  • Oxygen levels impact the efficiency of respiration.

Cellular respiration stages

Integrating Hess's Law with Photosynthesis and Respiration

  • Photosynthesis stores energy in glucose.
  • Respiration releases this stored energy through the breakdown of glucose.
  • The Enthalpy Cycle demonstrates the flow and conservation of energy between these processes.

Enthalpy cycle

Worked Examples

Example 1: Calculating Enthalpy Change in Photosynthesis

Problem: Calculate the total enthalpy change when 3 moles of glucose are produced during photosynthesis.

Solution:

  1. The enthalpy change for producing 1 mole of glucose is +2814 kJ/mol
  2. For 3 moles: ΔH = 3 × (+2814 kJ/mol) = +8442 kJ

Example 2: Using Hess's Law in Respiration

Problem: Calculate the energy released when 2 moles of glucose undergo complete cellular respiration.

Solution:

  1. The enthalpy change for respiration of 1 mole of glucose is -2814 kJ/mol
  2. For 2 moles: ΔH = 2 × (-2814 kJ/mol) = -5628 kJ
  3. Therefore, 5628 kJ of energy is released
infoNote

Ensure precise calculations of ΔH values for accurate applications in both biochemical and industrial contexts.

Identifying and Mitigating Errors

  • Ensure accurate calorimetry measurements and control over environmental conditions.
chatImportant

Precise ΔH measurements are essential for industrial applications and the efficiency of chemical manufacturing.

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