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Each of the two flasks contain 2.0 g of gas at the same temperature and pressure. One flask contains oxygen and the other hydrogen. (i) Which sample contains the greater number of molecules?

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Question

Each of the two flasks contain 2.0 g of gas at the same temperature and pressure. One flask contains oxygen and the other hydrogen.

  1. Which sample contains the greater number of molecules?
  2. If the hydrogen sample contains N molecules, how many molecules are present in oxygen sample?
Numerical
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Solution

i. 16 g of oxygen gas has = 6.023 × 1023 molecules

2 g of oxygen gas will have = `(6.023 xx 10^23)/(16 xx 2)`

= 0.75 × 1023

1 g of hydrogen has = 6.023 × 1023 molecules

2 g of hydrogen gas will have = `(6.023 xx 10^23 xx 2/1)`

= 12.05 × 1023

So, hydrogen gas has a greater number of molecules.

ii. Amount of hydrogen and oxygen gases is the same = 2 g

So, for oxygen, 32 g of gas has = N molecules

Then, 2 g of gas has = `N/32 xx 2`

= 16

∴ No. of molecules of oxygen is `N/16`.

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Chapter 5: Mole Concept and Stoichiometry - Questions from ICSE Examinations [Page 114]

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Frank Chemistry Part 2 [English] Class 10 ICSE
Chapter 5 Mole Concept and Stoichiometry
Questions from ICSE Examinations | Q 1999. 3. (b) | Page 114
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