a)Ba+2H2O-->Ba(OH)2+H2
Ta có
n H2=3,36/22,4=0,15(mol)
Theo pthh
n H2=n Ba=0,15(mol)
m Ba=0,15.137=20,55(g)
b) Theo pthh
n Ba(OH)2=n H2=0,15(mol)
CM Ba(OH02=0,15/0,5=0,3(M)
c) Ba(OH)2+H2SO4-->BaSO4+2H2O
Ta có
n H2SO4=0,3.0,3=0,09(mol)
-->H2SO4 hết..Ba(OH)2 dư
Theo pthh
n BaSO4=n H2SO4=0,09(mol)
m BaSO4=0,09.233=20,97(g)