Question 6 Solubility Rules for Some lonic Compounds Water Soluble compounds Almost all salts of Na", Kt, NH, Salts of nitrate (NO,), chlorate (CIO,), perchlorate (CIO,), acetate (CH,CO,) Almost all salts of Cl, Br", I Exceptions (not soluble): halides of Ag, Hg, +, Ph+ Salts containing F Exceptions (not soluble): fluorides of Mg+, Ca+, Sr2+ Ba+, Pb?+ Salts of sulfate (so, Exceptions (not soluble): sulfates of Ca+, Sr+, Ba+, Ph2+, Ag+ Insoluble compounds Most salts of carbonate (CO,), phosphate (PO,), oxalate (C20,), chromate (Cro,), sulfide (S) Exceptions (soluble): salts of NH, and the alkali metal cations, and Bas Most metal hydroxides and oxides Exceptions (soluble): alkali metal hydroxides and Ba(OH)2 and Sr(OH)2 A. Write the net ionic equation for the precipitation of copper(II) carbonate from aqueous solution: (Use the solubility rules provided in the OWL Preparation Page to determine the solubility of compounds.) B. Write the net ionic equation for the precipitation of iron(III) sulfide from aqueous solution: (Use the solubility rules provided in the OWL Preparation Page to determine the solubility of compounds.) C. Write the net ionic equation for the precipitation of iron(II) hydroxide from aqueous solution: (Use the solubility rules provided in the OWL Preparation Page to determine the solubility of compounds.) + 1

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Question 6
Solubility Rules for Some Ionic Compounds in Water
Soluble compounds
Almost all salts of Na*, Kt, NH4
Salts of nitrate (NO, ), chlorate (ClO,), perchlorate (CIO, ), acetate (CH3 CO,)
Almost all salts of Cl", Br", I
Exceptions (not soluble): halides of Ag*, Hg, 2+, Pb2+
Salts containing F
Exceptions (not soluble): fluorides of Mg+, Ca+, Sr+ Ba?+, Pb?+
Salts of sulfate (so,)
Exceptions (not soluble): sulfates of Ca+, Sr+, Ba?+, Pb?+, Ag+
Insoluble compounds
Most salts of carbonate (CO,), phosphate (PO,), oxalate (C20,2), chromate (Cro,), sulfide (S)
Exceptions (soluble): salts of NH, and the alkali metal cations, and Bas
Most metal hydroxides and oxides
Exceptions (soluble): alkali metal hydroxides and Ba(OH), and Sr(OH)2
A. Write the net ionic equation for the precipitation of copper(II) carbonate from aqueous solution:
(Use the solubility rules provided in the OWL Preparation Page to determine the solubility of compounds.)
B. Write the net ionic equation for the precipitation of iron(III) sulfide from aqueous solution:
(Use the solubility rules provided in the OWL Preparation Page to determine the solubility of compounds.)
+
C. Write the net ionic equation for the precipitation of iron(II) hydroxide from aqueous solution:
(Use the solubility rules provided in the OWL Preparation Page to determine the solubility of compounds.)
+
Transcribed Image Text:Question 6 Solubility Rules for Some Ionic Compounds in Water Soluble compounds Almost all salts of Na*, Kt, NH4 Salts of nitrate (NO, ), chlorate (ClO,), perchlorate (CIO, ), acetate (CH3 CO,) Almost all salts of Cl", Br", I Exceptions (not soluble): halides of Ag*, Hg, 2+, Pb2+ Salts containing F Exceptions (not soluble): fluorides of Mg+, Ca+, Sr+ Ba?+, Pb?+ Salts of sulfate (so,) Exceptions (not soluble): sulfates of Ca+, Sr+, Ba?+, Pb?+, Ag+ Insoluble compounds Most salts of carbonate (CO,), phosphate (PO,), oxalate (C20,2), chromate (Cro,), sulfide (S) Exceptions (soluble): salts of NH, and the alkali metal cations, and Bas Most metal hydroxides and oxides Exceptions (soluble): alkali metal hydroxides and Ba(OH), and Sr(OH)2 A. Write the net ionic equation for the precipitation of copper(II) carbonate from aqueous solution: (Use the solubility rules provided in the OWL Preparation Page to determine the solubility of compounds.) B. Write the net ionic equation for the precipitation of iron(III) sulfide from aqueous solution: (Use the solubility rules provided in the OWL Preparation Page to determine the solubility of compounds.) + C. Write the net ionic equation for the precipitation of iron(II) hydroxide from aqueous solution: (Use the solubility rules provided in the OWL Preparation Page to determine the solubility of compounds.) +
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