The answer for the following problem is mentioned below.
Explanation:
Given:
mass of the oxygen gas = 395 grams
We know;
For the production of the carbon monoxide;
The equation is,
Before balancing the equation;
C + [tex]O_{2}[/tex] → CO
After balancing the equation;
2 C +[tex]O_{2}[/tex] → 2 CO
where,
C = carbon molecule
O = oxygen molecule
CO = carbon monoxide
For the equation,
32 grams of oxygen gas → 2 × 6.023 × 10^-23 molecules
395 grams of oxygen gas → ?
= [tex]\frac{2*6.023*10^{-23}* 395}{32}[/tex]
= 148.125 × 10^-23 molecules of the carbon monoxide
Therefore 148.125 × 10^-23 molecules of the cabon monoxide gas is produced.
