What is the change in heat (in kJ to one decimal place) when 1.75 L of H2O condenses under 1 atm pressure at 100 °C?  ΔHvap = 40.7 kJ mol–1 d(H2O) = 0.958 g mL–1 (at 100 °C)

Chemistry by OpenStax (2015-05-04)
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Chapter5: Thermochemistry
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Problem 6E: How much heat, in joules and in calories, must be added to a 75.0g iron block with a specific heat...
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What is the change in heat (in kJ to one decimal place) when 1.75 L of H2O condenses under 1 atm pressure at 100 °C? 

  • ΔHvap = 40.7 kJ mol–1
  • d(H2O) = 0.958 g mL–1 (at 100 °C)
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