2 Na(s) + Cl₂(g) = 2 NaCl(s) 22,4 L in STP
Number of moles :
n = m / molar mass
Na = 103.0 / 22.98
Na = 4.48 moles
Cl₂ ( is limiting reagent )
13 L / 22,4 L = 0.580 moles Cl₂
2 ( Sodium stoichiometric coefficient)* 0.580 = 1.16 mol NaCl
Molar mass NaCl = 58.44 g/mol
1.16 * 58.44 = 67.7904 g of NaCl
hope this helps!
