3.42 g of sucrose are dissolved in 18 g of water in a beaker. The number of oxygen atoms in the solution are
(a) $6.68 \times 10^{23}$
(b) $6.09 \times 10^{22}$
(c) $6.022 \times 10^{23}$
(d) $6.022 \times 10^{21}$

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Solution

Number of moles of sucrose $= \frac{M a s s o f s u b s t a n c e}{M o l a r m a s s}$
$= \frac{3.42 g}{342 g m o l^{- 1}} = 0.01 m o l e$

1 mole of sucrose $(C_{12} H_{22} O_{11})$ contains $= 11 \times N_{A}$ atoms~of~oxygen

0.01 mole of sucrose $(C_{12} H_{22} O_{11})$ contains $= 0.01 \times N_{A}$ atoms of oxygen
$= 0.11 \times N_{A}$ atoms of oxygen

Number of moles of water $= \frac{18 g}{18 g m o l^{- 1}} = 1 m o l e$

1 mole of water $(H_{2} O)$ contains $1 \times N_{A}$ atom of oxygen
Total number of oxygen atoms = Number of oxygen atoms from sucrose + Number of oxygen atoms from water
$= 0.11 N_{A} + 1.0 N_{A} = 1.11 N_{A}$

Number of oxygen atoms in solution $= 1.11 \times$ Avogadro number
$= 1.11 \times 6.022 \times 10^{23} = 6.68 \times 10^{23}$

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(d) $6.022 \times 10^{21}$

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3.42 g of sucrose are dissolved in 18 g of water in a beaker. The number of oxygen atoms in the solution are (a) 6.68×1023 (b) 6.09×1022 (c) 6.022×1023 (d) 6.022×1021

3.42 g of sucrose are dissolved in 18 g of water in a beaker. The number of oxygen atoms in the solution are
(a) $6.68 \times 10^{23}$
(b) $6.09 \times 10^{22}$
(c) $6.022 \times 10^{23}$
(d) $6.022 \times 10^{21}$