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Question

Which of the following contain maximum number of molecules at STP 100g of CaCO3 44.8 L of O3, 2g of H2 and 16g of O2.

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Solution

Step 1:

Maximum number of molecules

(i) 100 g of CaCO3

Number of moles = Massmolecularmass

=100100=1

Number of molecules = moles×NA

where NA is Avogadro's number = 6.023×1023=1NA

Step 2:

(ii) 44.8 L of O3

Number of moles = Givenvolume22.4

=44.822.4=2moles

Number of molecules = 2×NA=2NA

Step 3:

(iii) 2 g of H2

Number of moles = 22=1mole

Number of molecules = 1NA

Step 4:

(iv) 16 g of O2

Number of moles = 1632=0.5moles

Number of molecules = 0.5NA

Hence, O3contains maximum number of molecules.


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