Q.For the following question, two statements are given – one labelled as Assertion (A) and the other labelled as Reason (R). Select the correct answer from the codes (A), (B), (C) and (D) as given below. (A) Both Assertion (A) and Reason (R) are true and Reason (R) is the correct explanation of the Assertion (A). (B) Both Assertion (A) and Reason (R) are true, but Reason (R) is not the correct explanation of the Assertion (A). (C) Assertion (A) is true, but Reason (R) is false. (D) Assertion (A) is false, but Reason (R) is true. Assertion (A) : The boiling point of ethanol is higher than that of dimethyl ether. Reason (R) : Ethanol molecules are associated through hydrogen bonding whereas in dimethyl ether, it is not possible.
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Start your 14-day free trial to unlock the full solution →The key idea is that hydrogen bonding between ethanol molecules creates stronger intermolecular forces than the dipole-dipole forces in dimethyl ether, raising ethanol’s boiling point. The Assertion is true, the Reason is true, and the Reason correctly explains the Assertion — so the answer is (A).
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What the question is really asking
You have two organic compounds with the same molecular formula, : ethanol () and dimethyl ether (). Despite having identical molar masses, their boiling points differ sharply — ethanol boils at , dimethyl ether at . The Assertion states this fact; the Reason claims the cause is hydrogen bonding in ethanol but not in ether. We need to check both statements and their logical link.
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Why boiling point depends on intermolecular forces
Boiling point is the temperature at which the vapour pressure of a liquid equals atmospheric pressure. To boil, molecules must overcome the attractive forces holding them together in the liquid phase. Stronger intermolecular forces → more energy needed → higher boiling point. The three main types (in increasing strength) are: London dispersion forces (present in all molecules), dipole-dipole interactions (in polar molecules), and hydrogen bonding (a special, very strong dipole-dipole interaction involving H bonded to N, O, or F).
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Hydrogen bonding in ethanol — the critical difference
In ethanol, the —OH group has a hydrogen atom covalently bonded to a highly electronegative oxygen. This creates a large partial positive charge on the H and a large partial negative charge on the O. The H of one ethanol molecule is strongly attracted to the O of another, forming a hydrogen bond. These bonds link ethanol molecules into extended networks, so you need a lot of thermal energy to break them apart and vaporise the liquid.
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Why dimethyl ether cannot hydrogen-bond
Dimethyl ether has an oxygen atom, but every hydrogen is bonded to carbon — not to oxygen. The C–H bond is not polar enough to create the strong partial positive charge needed for hydrogen bonding. The only intermolecular forces in dimethyl ether are weaker dipole-dipole interactions (from the C–O–C dipole) and London forces. That’s why it boils at a much lower temperature. …
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