Question

16 g of oxygen has same number of molecules as in:

(i) \[\ce{16 g of CO}\]

(ii) \[\ce{28 g of N2}\]

(iii) \[\ce{14 g of N2}\]

(iv) \[\ce{1.0 g of H2}\]

Answer 1

(iii) \[\ce{14 g of N2}\]

(iv) \[\ce{1.0 g of H2}\]

Explanation:

(iii) The number of moles of \[\ce{N2}\] is calculated by using equation (1) as follows,

Moles of N₂ = `(14 g)/((28 g)/(mol)` = 0.5 mol

The number of molecules can be calculated by using equation (2) as follows,

0.5 mol = `"Number of molecules"/(6.022 xx 10^23)` 

Number of molecules = `0.5 xx 6.022 xx 10^23`

(iv) The number of moles of \[\ce{H2}\] is calculated by using equation (1) as follows,

Moles of H₂ = `(1 g)/((2 g)/(mol)` = 0.5 mol

The number of molecules can be calculated by using equation (2) as follows,

0.5 mol = `"Number of molecules"/(6.022 xx 10^23)` 

Number of molecules = `0.5 xx 6.022 xx 10^23`