Question

a. copper (ii) sulfite _________
b. iron (ii) cyanide _________
c. sulfuric acid _________
d. ferric carbonate_________
e. calcium hypochlorite_________
f. barium nitrate_________
g. sodium chlorate_________
h. magnesium sulfate _________
i. iron (iii) nitrate_________
j. lithium perchlorate _________
k. sodium hydroxide _________

Explanation:

To determine the chemical formulas for each compound, we use the rules of ionic compound nomenclature (for ionic compounds) and acid nomenclature (for sulfuric acid). Here are the step - by - step solutions for each:

Part a: Copper (II) sulfite

Step 1: Identify ions

Copper (II) has a charge of $Cu^{2+}$, and sulfite is $SO_{3}^{2 -}$.

Step 2: Balance charges

The charges of $Cu^{2+}$ and $SO_{3}^{2 -}$ are equal in magnitude (2+ and 2 -), so the formula is $CuSO_{3}$.

Part b: Iron (II) cyanide

Step 1: Identify ions

Iron (II) is $Fe^{2+}$, and cyanide is $CN^{-}$.

Step 2: Balance charges

To balance the 2+ charge of $Fe^{2+}$ with the 1 - charge of $CN^{-}$, we need 2 $CN^{-}$ ions. So the formula is $Fe(CN)_{2}$.

Part c: Sulfuric acid

Step 1: Recall acid nomenclature

Sulfuric acid is a strong acid. The anion is sulfate ($SO_{4}^{2 -}$), and for an acid, we combine the anion with $H^{+}$ ions.

Step 2: Balance charges

To balance the 2 - charge of $SO_{4}^{2 -}$, we need 2 $H^{+}$ ions. So the formula is $H_{2}SO_{4}$.

Part d: Ferric carbonate

Step 1: Identify ions

Ferric means iron (III), so $Fe^{3+}$, and carbonate is $CO_{3}^{2 -}$.

Step 2: Balance charges

Using the criss - cross method, the charge of Fe (3+) becomes the subscript of $CO_{3}$, and the charge of $CO_{3}$ (2 -) becomes the subscript of Fe. So we have $Fe_{2}(CO_{3})_{3}$.

Part e: Calcium hypochlorite

Step 1: Identify ions

Calcium is $Ca^{2+}$, and hypochlorite is $ClO^{-}$.

Step 2: Balance charges

To balance the 2+ charge of $Ca^{2+}$ with the 1 - charge of $ClO^{-}$, we need 2 $ClO^{-}$ ions. So the formula is $Ca(ClO)_{2}$.

Part f: Barium nitrate

Step 1: Identify ions

Barium is $Ba^{2+}$, and nitrate is $NO_{3}^{-}$.

Step 2: Balance charges

To balance the 2+ charge of $Ba^{2+}$ with the 1 - charge of $NO_{3}^{-}$, we need 2 $NO_{3}^{-}$ ions. So the formula is $Ba(NO_{3})_{2}$.

Part g: Sodium chlorate

Step 1: Identify ions

Sodium is $Na^{+}$, and chlorate is $ClO_{3}^{-}$.

Step 2: Balance charges

The charges of $Na^{+}$ (1+) and $ClO_{3}^{-}$ (1 -) are equal in magnitude, so the formula is $NaClO_{3}$.

Part h: Magnesium sulfate

Step 1: Identify ions

Magnesium is $Mg^{2+}$, and sulfate is $SO_{4}^{2 -}$.

Step 2: Balance charges

The charges of $Mg^{2+}$ and $SO_{4}^{2 -}$ are equal in magnitude (2+ and 2 -), so the formula is $MgSO_{4}$.

Part i: Iron (III) nitrate

Step 1: Identify ions

Iron (III) is $Fe^{3+}$, and nitrate is $NO_{3}^{-}$.

Step 2: Balance charges

To balance the 3+ charge of $Fe^{3+}$ with the 1 - charge of $NO_{3}^{-}$, we need 3 $NO_{3}^{-}$ ions. So the formula is $Fe(NO_{3})_{3}$.

Part j: Lithium perchlorate

Step 1: Identify ions

Lithium is $Li^{+}$, and perchlorate is $ClO_{4}^{-}$.

Step 2: Balance charges

The charges of $Li^{+}$ (1+) and $ClO_{4}^{-}$ (1 -) are equal in magnitude, so the formula is $LiClO_{4}$.

Part k: Sodium hydroxide

Step 1: Identify ions

Sodium is $Na^{+}$, and hydroxide is $OH^{-}$.

Step 2: Balance charges

The charges of $Na^{+}$ (1+) and $OH^{-}$ (1 -) are equal in magnitude, so the formula is $NaOH$.

Final Answers

a. $\boldsymbol{CuSO_{3}}$
b. $\boldsymbol{Fe(CN)_{2}}$
c. $\boldsymbol{H_{2}SO_{4}}$
d. $\boldsymbol{Fe_{2}(CO_{3})_{3}}$
e. $\boldsymbol{Ca(ClO)_{2}}$
f. $\boldsymbol{Ba(NO_{3})_{2}}$
g. $\boldsymbol{NaClO_{3}}$
h. $\boldsymbol{MgSO_{4}}$
i. $\boldsymbol{Fe(NO_{3})_{3}}$
j. $\boldsymbol{LiClO_{4}}$
k. $\boldsymbol{NaOH}$

Answer:

To determine the chemical formulas for each compound, we use the rules of ionic compound nomenclature (for ionic compounds) and acid nomenclature (for sulfuric acid). Here are the step - by - step solutions for each:

Part a: Copper (II) sulfite

Step 1: Identify ions

Copper (II) has a charge of $Cu^{2+}$, and sulfite is $SO_{3}^{2 -}$.

Step 2: Balance charges

The charges of $Cu^{2+}$ and $SO_{3}^{2 -}$ are equal in magnitude (2+ and 2 -), so the formula is $CuSO_{3}$.

Part b: Iron (II) cyanide

Step 1: Identify ions

Iron (II) is $Fe^{2+}$, and cyanide is $CN^{-}$.

Step 2: Balance charges

To balance the 2+ charge of $Fe^{2+}$ with the 1 - charge of $CN^{-}$, we need 2 $CN^{-}$ ions. So the formula is $Fe(CN)_{2}$.

Part c: Sulfuric acid

Step 1: Recall acid nomenclature

Sulfuric acid is a strong acid. The anion is sulfate ($SO_{4}^{2 -}$), and for an acid, we combine the anion with $H^{+}$ ions.

Step 2: Balance charges

To balance the 2 - charge of $SO_{4}^{2 -}$, we need 2 $H^{+}$ ions. So the formula is $H_{2}SO_{4}$.

Part d: Ferric carbonate

Step 1: Identify ions

Ferric means iron (III), so $Fe^{3+}$, and carbonate is $CO_{3}^{2 -}$.

Step 2: Balance charges

Using the criss - cross method, the charge of Fe (3+) becomes the subscript of $CO_{3}$, and the charge of $CO_{3}$ (2 -) becomes the subscript of Fe. So we have $Fe_{2}(CO_{3})_{3}$.

Part e: Calcium hypochlorite

Step 1: Identify ions

Calcium is $Ca^{2+}$, and hypochlorite is $ClO^{-}$.

Step 2: Balance charges

To balance the 2+ charge of $Ca^{2+}$ with the 1 - charge of $ClO^{-}$, we need 2 $ClO^{-}$ ions. So the formula is $Ca(ClO)_{2}$.

Part f: Barium nitrate

Step 1: Identify ions

Barium is $Ba^{2+}$, and nitrate is $NO_{3}^{-}$.

Step 2: Balance charges

To balance the 2+ charge of $Ba^{2+}$ with the 1 - charge of $NO_{3}^{-}$, we need 2 $NO_{3}^{-}$ ions. So the formula is $Ba(NO_{3})_{2}$.

Part g: Sodium chlorate

Step 1: Identify ions

Sodium is $Na^{+}$, and chlorate is $ClO_{3}^{-}$.

Step 2: Balance charges

The charges of $Na^{+}$ (1+) and $ClO_{3}^{-}$ (1 -) are equal in magnitude, so the formula is $NaClO_{3}$.

Part h: Magnesium sulfate

Step 1: Identify ions

Magnesium is $Mg^{2+}$, and sulfate is $SO_{4}^{2 -}$.

Step 2: Balance charges

The charges of $Mg^{2+}$ and $SO_{4}^{2 -}$ are equal in magnitude (2+ and 2 -), so the formula is $MgSO_{4}$.

Part i: Iron (III) nitrate

Step 1: Identify ions

Iron (III) is $Fe^{3+}$, and nitrate is $NO_{3}^{-}$.

Step 2: Balance charges

To balance the 3+ charge of $Fe^{3+}$ with the 1 - charge of $NO_{3}^{-}$, we need 3 $NO_{3}^{-}$ ions. So the formula is $Fe(NO_{3})_{3}$.

Part j: Lithium perchlorate

Step 1: Identify ions

Lithium is $Li^{+}$, and perchlorate is $ClO_{4}^{-}$.

Step 2: Balance charges

The charges of $Li^{+}$ (1+) and $ClO_{4}^{-}$ (1 -) are equal in magnitude, so the formula is $LiClO_{4}$.

Part k: Sodium hydroxide

Step 1: Identify ions

Sodium is $Na^{+}$, and hydroxide is $OH^{-}$.

Step 2: Balance charges

The charges of $Na^{+}$ (1+) and $OH^{-}$ (1 -) are equal in magnitude, so the formula is $NaOH$.

Final Answers

a. $\boldsymbol{CuSO_{3}}$
b. $\boldsymbol{Fe(CN)_{2}}$
c. $\boldsymbol{H_{2}SO_{4}}$
d. $\boldsymbol{Fe_{2}(CO_{3})_{3}}$
e. $\boldsymbol{Ca(ClO)_{2}}$
f. $\boldsymbol{Ba(NO_{3})_{2}}$
g. $\boldsymbol{NaClO_{3}}$
h. $\boldsymbol{MgSO_{4}}$
i. $\boldsymbol{Fe(NO_{3})_{3}}$
j. $\boldsymbol{LiClO_{4}}$
k. $\boldsymbol{NaOH}$