Using your knowledge of intermolecular forces, predict which of these will have the highest boiling point
a) C2H4
b) C3H6
c) C4H8
d) C5H10
All the given molecules are hydrocarbons. They are non-polar in nature.
All they have London Dispersion forces.
So, the boiling point depends on the molecular weight of the compound.
Higher the molecular weight, higher is the boiling point.
Among the given, C5H10 has the highest molecular weight (having more number of carbons).
So, C5H10has the highest boiling point among the given.
Option D is the right answer.
Using your knowledge of intermolecular forces, predict which of these will have the highest boiling point...
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a) Which type of intermolecular forces accounts for the differences in boiling points in these three compounds? 1) Methanol CH,OH 2) 2-Methylpropane Сн, H₃ C CH₃ 3) Acetone H₃C/ CH3 b) Determine the order of highest to lowest boiling points: Highest bp Lowest bp
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which substance below would you predict to have the highest boiling
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QUESTIONS Butane (CH:CH-CH:CH) has a boiling point of -1°C. Butanol (CH.CH:CH-OH) has a boiling point of 118C. Explain this observation using your knowledge of intermolecular forces (list the types of intermolecular forces possible for each molecule and then explain briefly why that affects the boiling point)
which of the following will have the highest boiling
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