In November 2024
Answer to Question #335585 in Inorganic Chemistry for Gf dsfa
if 15.50 grams of lead (II) nitrate mixes with 3.81 grams of sodium chloride how many grams of sodium nitrate are formed
Pb(NO3)2 + 2NaCl = 2NaNO3 + PbCl2
n(Pb(NO3)2) = 15.50 g / 331.2 g/mol = 0.047 moles
n(NaCl) = 3.81g / 58.44 g/mol = 0.065 moles
NaCl - limiting reagent
m( NaNO3) = (m(NaCl)*2Mr(NaCl)) / 2Mr(NaNO3)
m( NaNO3) = ( 3.81 g * (2*58.44 g/mol)) / 2*84.99 g/mol = 2.62 g
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