Living by Chemistry
Living by Chemistry
2nd Edition
ISBN: 9781464142314
Author: Angelica M. Stacy
Publisher: W. H. Freeman
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Chapter U4, Problem 11RE

(a)

Interpretation Introduction

Interpretation: The type of reaction represented by the given equation is to be determined.

Concept introduction: Acids on reaction with base leads to the formation of salt and water molecule. The amount of product formed in the reaction depends upon the amount of limiting reactant.

(a)

Expert Solution
Check Mark

Answer to Problem 11RE

The reaction type represented by the given equation is a double displacement reaction.

Explanation of Solution

In the given reaction, H3PO4 reacts with KOH . In the products, the hydrogen atoms of H3PO4 are replaced by potassium atoms and the potassium atoms of KOH are replaced by a hydrogen atom. Therefore, the given equation represents a double displacement reaction.

(b)

Interpretation Introduction

Interpretation: The balanced chemical equation is to be stated.

Concept introduction: The number of atoms on the left-hand side and right-hand side of the equation is equal in a balanced chemical equation. The amount of product formed in the reaction depends upon the amount of limiting reactant.

(b)

Expert Solution
Check Mark

Answer to Problem 11RE

The balanced chemical equation is

  H3PO4(aq)+3KOH(aq)K3PO4(aq)+3H2O(l)

Explanation of Solution

The given chemical equation is

  H3PO4(aq)+KOH(aq)K3PO4(aq)+H2O(l)

The number of K atom on the right side of the equation is more than the left-hand side of the equation. Whereas the number of H on the left-hand side of the equation is more than the right-hand side of the equation. This equation is balanced by adding a stoichiometric coefficient 3 before KOH and H2O . The balanced chemical equation is

  H3PO4(aq)+3KOH(aq)K3PO4(aq)+3H2O(l)

(c)

Interpretation Introduction

Interpretation: The number of moles of phosphoric acid required to form 5.0mol of potassium phosphate is to be calculated.

Concept introduction: The amount of product formed in the reaction depends upon the amount of limiting reactant. After completion of the chemical reaction, the limiting reagent is fully utilized.

(c)

Expert Solution
Check Mark

Answer to Problem 11RE

The number of moles of phosphoric acid required to form 5.0mol of potassium phosphate is 5.0mol .

Explanation of Solution

The balanced chemical equation is

  H3PO4(aq)+3KOH(aq)K3PO4(aq)+3H2O(l)

The balanced chemical equation shows that the molar ratio between phosphoric acid and potassium phosphate is 1:1 . Therefore, to form 5.0mol of potassium phosphate, the number of moles of phosphoric acid required is 5.0mol .

(d)

Interpretation Introduction

Interpretation: The maximum amount of potassium phosphate that can be produced from 628.0g of phosphoric acid and 1122.0g of potassium hydroxide is to be calculated.

Concept introduction: The amount of product formed in the reaction depends upon the amount of limiting reactant. After completion of the chemical reaction, the limiting reagent is fully utilized.

(d)

Expert Solution
Check Mark

Answer to Problem 11RE

The maximum amount of potassium phosphate that can be produced from 628.0g of phosphoric acid and 1122.0g of potassium hydroxide is 1360.65g .

Explanation of Solution

The number of moles of H3PO4 is calculated as,

  nH3PO4=mH3PO4MH3PO4

Where,

  • mH3PO4 is the given mass of phosphoric acid.
  • MH3PO4 is the molar mass of phosphoric acid.

The molar mass of phosphoric acid is 97.994g/mol .

Substitute the given mass and molar mass of phosphoric acid in the above formula.

  nH3PO4=628.0g97.994g/mol=6.41mol

The number of moles of KOH is calculated as,

  nKOH=mKOHMKOH

Where,

  • mKOH is the given mass of potassium hydroxide.
  • MKOH is the molar mass of potassium hydroxide.

The molar mass of potassium hydroxide is 56.1056g/mol .

Substitute the given mass and molar mass of potassium hydroxide in the above formula.

  nKOH=1122.0g56.1056g/mol=20mol

The molar ratio of H3PO4 and KOH is 1:3 . Therefore, phosphoric acid is the limiting reactant.

The balanced chemical equation shows that the molar ratio between phosphoric acid and potassium phosphate is 1:1 . Therefore, the number of moles of potassium phosphate produced by 6.41mol of phosphoric acid is 6.41mol .

The amount of potassium phosphate is calculated as,

  mK3PO4=nK3PO4×MK3PO4

Where,

  • nK3PO4 is the number of moles of potassium phosphate.
  • MK3PO4 is the molar mass of potassium phosphate (212.27g/mol) .

Substitute the number of moles and molar mass of potassium phosphate in the above formula.

  mK3PO4=6.41mol×212.27g/mol=1360.65g

(e)

Interpretation Introduction

Interpretation: The limiting reactant of part d and its amount of excess reactant in moles and grams is to be determined.

Concept introduction: The amount of product formed in the reaction depends upon the amount of limiting reactant. After completion of the chemical reaction, the limiting reagent is fully utilized.

(e)

Expert Solution
Check Mark

Answer to Problem 11RE

Phosphoric acid is the limiting reactant. The amount of excess reactant in moles and grams is 0.77mol and 43.20g , respectively.

Explanation of Solution

The number of moles of H3PO4 and KOH is 6.41mol and 20mol . The molar ratio of H3PO4 and KOH is 1:3 . Therefore, phosphoric acid is the limiting reactant.

The number of moles of KOH that completely reacts with 6.41mol of H3PO4 is 19.23mol . The number of moles of KOH left is 0.77mol .

The amount KOH in grams is calculated as,

The number of moles of KOH is calculated as,

  mKOH=nKOH×MKOH

Where,

  • nKOH is the number of moles of potassium hydroxide.
  • MKOH is the molar mass of potassium hydroxide.

The molar mass of potassium hydroxide is 56.1056g/mol .

Substitute the number of moles and molar mass of potassium hydroxide in the above formula.

  mKOH=0.77mol×56.1056g/mol=43.20g

Chapter U4 Solutions

Living by Chemistry

Ch. U4.69 - Prob. 3ECh. U4.69 - Prob. 4ECh. U4.69 - Prob. 5ECh. U4.70 - Prob. 1TAICh. U4.70 - Prob. 1ECh. U4.70 - Prob. 2ECh. U4.70 - Prob. 3ECh. U4.70 - Prob. 4ECh. U4.70 - Prob. 6ECh. U4.71 - Prob. 1TAICh. U4.71 - Prob. 1ECh. U4.71 - Prob. 2ECh. U4.71 - Prob. 3ECh. U4.71 - Prob. 4ECh. U4.71 - Prob. 5ECh. U4.71 - Prob. 6ECh. U4.71 - Prob. 7ECh. U4.72 - Prob. 1TAICh. U4.72 - Prob. 1ECh. U4.72 - Prob. 2ECh. U4.72 - Prob. 3ECh. U4.72 - Prob. 4ECh. U4.73 - Prob. 1TAICh. U4.73 - Prob. 1ECh. U4.73 - Prob. 2ECh. U4.73 - Prob. 3ECh. U4.73 - Prob. 5ECh. U4.73 - Prob. 6ECh. U4.73 - Prob. 7ECh. U4.74 - Prob. 1TAICh. U4.74 - Prob. 1ECh. U4.74 - Prob. 2ECh. U4.74 - Prob. 4ECh. U4.74 - Prob. 5ECh. U4.75 - Prob. 1TAICh. U4.75 - Prob. 1ECh. U4.75 - Prob. 2ECh. U4.75 - Prob. 4ECh. U4.75 - Prob. 5ECh. U4.75 - Prob. 6ECh. U4.75 - Prob. 7ECh. U4.75 - Prob. 8ECh. U4.75 - Prob. 9ECh. U4.75 - Prob. 10ECh. U4.75 - Prob. 11ECh. U4.76 - Prob. 1TAICh. U4.76 - Prob. 1ECh. U4.76 - Prob. 2ECh. U4.76 - Prob. 3ECh. U4.76 - Prob. 4ECh. U4.76 - Prob. 5ECh. U4.76 - Prob. 6ECh. U4.76 - Prob. 7ECh. U4.76 - Prob. 8ECh. U4.77 - Prob. 1TAICh. U4.77 - Prob. 1ECh. U4.77 - Prob. 2ECh. U4.77 - Prob. 3ECh. U4.77 - Prob. 4ECh. U4.77 - Prob. 5ECh. U4.77 - Prob. 6ECh. U4.77 - Prob. 7ECh. U4.77 - Prob. 8ECh. U4.78 - Prob. 1TAICh. U4.78 - Prob. 1ECh. U4.78 - Prob. 2ECh. U4.78 - Prob. 3ECh. U4.78 - Prob. 4ECh. U4.78 - Prob. 5ECh. U4.78 - Prob. 6ECh. U4.78 - Prob. 7ECh. U4.78 - Prob. 8ECh. U4.79 - Prob. 1TAICh. U4.79 - Prob. 1ECh. U4.79 - Prob. 2ECh. U4.79 - Prob. 3ECh. U4.79 - Prob. 4ECh. U4.80 - Prob. 1TAICh. U4.80 - Prob. 1ECh. U4.80 - Prob. 2ECh. U4.80 - Prob. 3ECh. U4.80 - Prob. 4ECh. U4.80 - Prob. 5ECh. U4.80 - Prob. 6ECh. U4.80 - Prob. 7ECh. U4.80 - Prob. 8ECh. U4.80 - Prob. 9ECh. U4.80 - Prob. 10ECh. U4.81 - Prob. 1TAICh. U4.81 - Prob. 1ECh. U4.81 - Prob. 2ECh. U4.81 - Prob. 3ECh. U4.81 - Prob. 4ECh. U4.81 - Prob. 5ECh. U4.81 - Prob. 6ECh. U4.81 - Prob. 7ECh. U4.81 - Prob. 8ECh. U4.81 - Prob. 9ECh. U4.82 - Prob. 1TAICh. U4.82 - Prob. 1ECh. U4.82 - Prob. 2ECh. U4.82 - Prob. 3ECh. U4.82 - Prob. 4ECh. U4.82 - Prob. 5ECh. U4.82 - Prob. 6ECh. U4.82 - Prob. 7ECh. U4.82 - Prob. 8ECh. U4.83 - Prob. 1TAICh. U4.83 - Prob. 1ECh. U4.83 - Prob. 2ECh. U4.83 - Prob. 3ECh. U4.83 - Prob. 4ECh. U4.83 - Prob. 5ECh. U4.83 - Prob. 6ECh. U4.83 - Prob. 7ECh. U4.84 - Prob. 1TAICh. U4.84 - Prob. 1ECh. U4.84 - Prob. 2ECh. U4.84 - Prob. 3ECh. U4.84 - Prob. 5ECh. U4.84 - Prob. 6ECh. U4.84 - Prob. 7ECh. U4.85 - Prob. 1TAICh. U4.85 - Prob. 1ECh. U4.85 - Prob. 2ECh. U4.85 - Prob. 3ECh. U4.85 - Prob. 4ECh. U4.85 - Prob. 5ECh. U4.85 - Prob. 6ECh. U4.85 - Prob. 7ECh. U4.85 - Prob. 8ECh. U4.86 - Prob. 1TAICh. U4.86 - Prob. 1ECh. U4.86 - Prob. 2ECh. U4.86 - Prob. 3ECh. U4.86 - Prob. 4ECh. U4.86 - Prob. 6ECh. U4.86 - Prob. 7ECh. U4.86 - Prob. 8ECh. U4.87 - Prob. 1TAICh. U4.87 - Prob. 1ECh. U4.87 - Prob. 2ECh. U4.87 - Prob. 3ECh. U4.87 - Prob. 4ECh. U4.87 - Prob. 5ECh. U4.87 - Prob. 6ECh. U4.87 - Prob. 7ECh. U4.87 - Prob. 8ECh. U4.88 - Prob. 1TAICh. U4.88 - Prob. 1ECh. U4.88 - Prob. 2ECh. U4.88 - Prob. 4ECh. U4.88 - Prob. 5ECh. U4.88 - Prob. 6ECh. U4.88 - Prob. 7ECh. U4.88 - Prob. 8ECh. U4.89 - Prob. 1TAICh. U4.89 - Prob. 1ECh. U4.89 - Prob. 2ECh. U4.89 - Prob. 3ECh. U4.89 - Prob. 4ECh. U4.89 - Prob. 5ECh. U4.89 - Prob. 6ECh. U4.90 - Prob. 1ECh. U4.90 - Prob. 2ECh. U4.90 - Prob. 3ECh. U4.90 - Prob. 4ECh. U4.90 - Prob. 5ECh. U4.90 - Prob. 6ECh. U4.90 - Prob. 7ECh. U4.91 - Prob. 1ECh. U4.91 - Prob. 2ECh. U4.91 - Prob. 3ECh. U4.91 - Prob. 5ECh. U4.91 - Prob. 6ECh. U4.92 - Prob. 1TAICh. U4.92 - Prob. 1ECh. U4.92 - Prob. 2ECh. U4.92 - Prob. 3ECh. U4.92 - Prob. 4ECh. U4.93 - Prob. 1TAICh. U4.93 - Prob. 1ECh. U4.93 - Prob. 2ECh. U4.93 - Prob. 4ECh. U4.93 - Prob. 5ECh. U4.93 - Prob. 6ECh. U4 - Prob. C13.3RECh. U4 - Prob. C13.4RECh. U4 - Prob. C14.1RECh. U4 - Prob. C14.2RECh. U4 - Prob. C14.3RECh. U4 - Prob. C14.5RECh. U4 - Prob. C14.6RECh. U4 - Prob. C15.1RECh. U4 - Prob. C15.2RECh. U4 - Prob. C15.3RECh. U4 - Prob. C15.4RECh. U4 - Prob. C15.5RECh. U4 - Prob. C15.6RECh. U4 - Prob. C15.7RECh. U4 - Prob. C15.8RECh. U4 - Prob. C16.1RECh. U4 - Prob. C16.2RECh. U4 - Prob. C16.3RECh. U4 - Prob. C16.4RECh. U4 - Prob. C17.1RECh. U4 - Prob. C17.2RECh. U4 - Prob. C17.3RECh. U4 - Prob. 1RECh. U4 - Prob. 4RECh. U4 - Prob. 5RECh. U4 - Prob. 6RECh. U4 - Prob. 7RECh. U4 - Prob. 8RECh. U4 - Prob. 9RECh. U4 - Prob. 10RECh. U4 - Prob. 11RECh. U4 - Prob. 12RECh. U4 - Prob. 1STPCh. U4 - Prob. 2STPCh. U4 - Prob. 3STPCh. U4 - Prob. 4STPCh. U4 - Prob. 5STPCh. U4 - Prob. 6STPCh. U4 - Prob. 7STPCh. U4 - Prob. 8STPCh. U4 - Prob. 9STPCh. U4 - Prob. 10STPCh. U4 - Prob. 11STPCh. U4 - Prob. 12STPCh. U4 - Prob. 13STPCh. U4 - Prob. 14STPCh. U4 - Prob. 15STPCh. U4 - Prob. 16STPCh. U4 - Prob. 17STPCh. U4 - Prob. 18STPCh. U4 - Prob. 19STPCh. U4 - Prob. 20STP
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