60 likes | 77 Views
This text discusses the formation of precipitates in different compounds and their respective net ionic equations.
E N D
Set one • Ni(OH)2 • Net ionic equation • Ni 2+ (aq) + 2OH- (aq) > Ni(OH)2 (s) • Cu(OH)2 • Net ionic Equation • Cu2+(aq)+ 2OH –(aq)> Cu(OH)2 (s) • Ba(OH)2 • Net ionic Equation • Ba 2+(aq) + 2OH- (aq) >Ba(OH)2(s)
BaSO4 Net ionic equation Ba 2+ (aq) + SO4 2- (aq) > BaSO4 (s) Co(OH)2 Net ionic equation Co2+ (aq) + 2OH-(aq) > Co(OH)2
SrSO4 • Net Ionic Equation • Sr 2+(aq) + SO42- (aq)> SrSO4(s) • Sr(OH)2 • Net ionic Equation • Sr 2+(aq) + 2OH- (aq) >Sr(OH)2(s)
PbI2 • Net ionic equation • Pb 2+(aq)+ 2I-(aq) > PbI2(s) • AgI • Net ionic equation • Ag+ (aq) + I – (aq) > AgI(s) • PbCrO4 • Net ionic equation • Pb 2+ (aq) + CrO42-(aq) > PbCrO4 (s)
BaCrO4 • Net ionic equation • Ba 2+ (aq) + CrO42-(aq) > BaCrO4 (s) • PbCl2(aq) • Net ionic equation • Pb 2+I(aq) + 2Cl- (aq) > PbCl2 (s) • AgCl • Net ionic equation • Ag+(aq) + Cl-(aq) > AgCl (s) • Ag2CrO4 (s) • Net ionic equation • 2Ag+(aq) + CrO4 2-(aq) Ag2CrO4 (s)