Q.Which one of the following will have the largest number of atoms?
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Start your 14-day free trial to unlock the full solution →The number of atoms in a given mass is inversely proportional to the atomic (or molecular) mass — the lighter the element, the more atoms. Among 1 g samples, lithium (Li) has the smallest atomic mass (6.94 u), so 1 g Li contains the largest number of atoms.
The question asks: for the same mass (1 g), which substance gives the most atoms? The key is that atoms are counted in moles, and one mole of any substance contains the same number of entities (Avogadro’s number, ). So the number of atoms in a sample depends directly on the number of moles of atoms present.
Number of moles of atoms = .
For a given mass, the substance with the smallest molar mass per atom will yield the largest number of atoms. That’s the core idea.
Let’s work through each option.
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1 g Au (s) — Gold is monatomic. Atomic mass of Au = 197 g mol⁻¹.
Moles of Au atoms = mol.
Number of atoms = .
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1 g Na (s) — Sodium is also monatomic. Atomic mass of Na = 23 g mol⁻¹.
Moles of Na atoms = mol.
Number of atoms = .
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1 g Li (s) — Lithium is monatomic. Atomic mass of Li = 6.94 g mol⁻¹.
Moles of Li atoms = mol.
Number of atoms = .
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1 g Cl₂ (g) — Chlorine gas is diatomic. Molecular mass of Cl₂ = 2 × 35.5 = 71 g mol⁻¹.
Moles of Cl₂ molecules = mol.
Each Cl₂ molecule contains 2 atoms, so moles of Cl atoms = mol. …
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