The molar mass of acetic acid in benzene and in water is to be determined. The state of acetic acid in both solutions is to be explained and the structure of acetic acid in benzene is to be drawn. Concept introduction: Colligative properties: Properties of solutions which having influence on the concentration of the solute in it. Colligative properties are, Decrease in the vapor pressure Increase in the boiling point Decline in the freezing point Osmotic pressure Change in freezing point is calculated by using the equation, Δ T f p = K f p m s o l u t e where, K f p is the molal freezing point depression constant. The number of moles of any substance can be determined using the equation Number of mole = Given mass of the substance Molar mass
The molar mass of acetic acid in benzene and in water is to be determined. The state of acetic acid in both solutions is to be explained and the structure of acetic acid in benzene is to be drawn. Concept introduction: Colligative properties: Properties of solutions which having influence on the concentration of the solute in it. Colligative properties are, Decrease in the vapor pressure Increase in the boiling point Decline in the freezing point Osmotic pressure Change in freezing point is calculated by using the equation, Δ T f p = K f p m s o l u t e where, K f p is the molal freezing point depression constant. The number of moles of any substance can be determined using the equation Number of mole = Given mass of the substance Molar mass
Solution Summary: The author explains the molar mass of acetic acid in benzene and in water.
Interpretation: The molar mass of acetic acid in benzene and in water is to be determined. The state of acetic acid in both solutions is to be explained and the structure of acetic acid in benzene is to be drawn.
Concept introduction:
Colligative properties: Properties of solutions which having influence on the concentration of the solute in it. Colligative properties are,
Decrease in the vapor pressure
Increase in the boiling point
Decline in the freezing point
Osmotic pressure
Change in freezing point is calculated by using the equation,
ΔTfp=Kfpmsolute
where,
Kfp is the molal freezing point depression constant.
The number of moles of any substance can be determined using the equation
"Water gas" is an industrial fuel composed of a mixture of carbon monoxide and hydrogen gases. When this
fuel is burned, carbon dioxide and water result. From the information given below, write a balanced equation
and determine the enthalpy of this reaction:
CO(g) + O2(g) → CO₂(g) + 282.8 kJ
H2(g) + O2(g) → H₂O(g) + 241.8 kJ
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4. Calculate AG for the following reaction at 25°C. Will the reaction occur (be spontaneous)? How do you
know?
NH3(g) + HCl(g) → NH4Cl(s)
AH=-176.0 kJ
AS-284.8 J-K-1
true or false
The equilibrium constant for this reaction is 0.20.
N2O4(g) ⇔ 2NO2(g)
Based on the above, the equilibrium constant for the following reaction is 5.
4NO2(g) ⇔ 2N2O4(g)
Author:Steven D. Gammon, Ebbing, Darrell Ebbing, Steven D., Darrell; Gammon, Darrell Ebbing; Steven D. Gammon, Darrell D.; Gammon, Ebbing; Steven D. Gammon; Darrell
Author:Steven D. Gammon, Ebbing, Darrell Ebbing, Steven D., Darrell; Gammon, Darrell Ebbing; Steven D. Gammon, Darrell D.; Gammon, Ebbing; Steven D. Gammon; Darrell