/*! This file is auto-generated */ .wp-block-button__link{color:#fff;background-color:#32373c;border-radius:9999px;box-shadow:none;text-decoration:none;padding:calc(.667em + 2px) calc(1.333em + 2px);font-size:1.125em}.wp-block-file__button{background:#32373c;color:#fff;text-decoration:none} Problem 90 When heated, a gaseous compound ... [FREE SOLUTION] | 91Ó°ÊÓ

91Ó°ÊÓ

Log out

Learning Materials

Features

Discover

Chapter 15: Problem 90

When heated, a gaseous compound A dissociates as follows: $$ \mathrm{A}(g) \rightleftarrows \mathrm{B}(g)+\mathrm{C}(g) $$ In an experiment, A was heated at a certain temperature until its equilibrium pressure reached \(0.14 P\), where \(P\) is the total pressure. Calculate the equilibrium constant \(K_{P}\) of this reaction.

Short Answer

Expert verified
The equilibrium constant \(K_{P}\) is 5.283.

Step by step solution

01

Define Initial and Equilibrium Conditions

Initially, we have only A, and its partial pressure is written as \(P_{A} = P\). At equilibrium, the pressure of A is reduced to \(0.14P\), so \(P_{A_{eq}} = 0.14P\). Let the change in pressure be \(x\), then the pressure of B and C each becomes \(x\). Since the dissociation of A to B and C is a 1:1:1 reaction, we have:\(x = P - 0.14P = 0.86P\). Thus, \(P_{B_{eq}} = P_{C_{eq}} = 0.86P\).
02

Express Total Pressure at Equilibrium

The total pressure at equilibrium remains \(P\). It's the sum of the partial pressures of A, B, and C, which is:\[P_{eq} = P_{A_{eq}} + P_{B_{eq}} + P_{C_{eq}} = 0.14P + 0.86P + 0.86P = P\]. This confirms our expressions for individual partial pressures are consistent with the total pressure remaining constant at P.
03

Write Expression for Equilibrium Constant \(K_{P}\)

The equilibrium constant \(K_P\) for the reaction \(\mathrm{A}(g) \rightleftharpoons \mathrm{B}(g)+\mathrm{C}(g)\) is defined as:\[K_P = \frac{P_{B_{eq}} \cdot P_{C_{eq}}}{P_{A_{eq}}}\]. Substituting the equilibrium pressures, we have \[K_P = \frac{(0.86P) \cdot (0.86P)}{0.14P}\].
04

Simplify the Expression for \(K_{P}\)

Simplify the expression obtained in Step 3:\[K_P = \frac{0.86^2 P^2}{0.14P} = \frac{0.7396P^2}{0.14P}\].By cancelling out the common \(P\) term, we get:\[K_P = \frac{0.7396P}{0.14} = 5.283\].

Unlock Step-by-Step Solutions & Ace Your Exams!

  • Full Textbook Solutions

    Get detailed explanations and key concepts

  • Unlimited Al creation

    Al flashcards, explanations, exams and more...

  • Ads-free access

    To over 500 millions flashcards

  • Money-back guarantee

    We refund you if you fail your exam.

Over 30 million students worldwide already upgrade their learning with 91Ó°ÊÓ!

Key Concepts

These are the key concepts you need to understand to accurately answer the question.

Dissociation Reaction
A dissociation reaction involves the breaking down of a compound into its constituent parts. In the given problem, the gaseous compound A dissociates into two different gases B and C. This can be represented by the equation: \( \text{A}(g) \rightleftharpoons \text{B}(g) + \text{C}(g) \). The equation with the double arrow indicates that the reaction is reversible. This means it can proceed in both forward and backward directions. When heat is applied, compound A breaks down into B and C, establishing a dynamic equilibrium. This process is crucial in understanding and calculating equilibrium situations for gases in closed systems. Recognizing dissociation reactions helps us to comprehend how concentration changes affect equilibrium positions.
Partial Pressure
In a mixture of gases, the partial pressure of a component is the pressure it would exert if it alone occupied the entire volume. For chemical reactions involving gases, like the dissociation of A into B and C, partial pressures play a crucial role. Consider the initial partial pressure of A to be \( P \). The dissociation reduces the partial pressure of A to \( 0.14P \). As it dissociates, the gases B and C are formed, each having a partial pressure of \( 0.86P \). Understanding partial pressures helps us in determining the equilibrium constant \( K_P \). It also provides insights into the distribution of gas molecules at equilibrium.
Le Chatelier's Principle
Le Chatelier's Principle gives us insight into how a system at equilibrium reacts to external changes. According to this principle, if any change is imposed on a system at equilibrium, the system shifts in a direction that counteracts the change and re-establishes equilibrium. In the context of the dissociation reaction \( \text{A}(g) \rightleftharpoons \text{B}(g) + \text{C}(g) \), increasing the temperature shifts the equilibrium towards the products, B and C. This is because dissociation is endothermic, requiring heat to proceed in the forward direction. Le Chatelier's principle helps predict how changes like pressure, temperature, or concentration affect the equilibrium state and thus guides us in controlling reactions in practical scenarios.
Equilibrium Expression
The equilibrium expression is a mathematical equation that describes the relationship between the concentrations (or partial pressures for gases) of reactants and products at equilibrium. For the dissociation reaction \( \text{A}(g) \rightleftharpoons \text{B}(g) + \text{C}(g) \), the equilibrium constant \( K_P \) is expressed as: \[ K_P = \frac{P_{B_{eq}} \cdot P_{C_{eq}}}{P_{A_{eq}}} \] Where \( P_{B_{eq}} \), \( P_{C_{eq}} \), and \( P_{A_{eq}} \) are the partial pressures of B, C, and A at equilibrium, respectively. These expressions allow chemists to calculate the composition of gas mixtures at equilibrium and predict how the system will respond to changes. By using the equilibrium expression, we can solve for unknowns in chemical reactions and thus gain deeper insights into reaction dynamics.

One App. One Place for Learning.

All the tools & learning materials you need for study success - in one app.

Get started for free

Most popular questions from this chapter

Consider the decomposition of ammonium chloride at a certain temperature: $$\mathrm{NH}_{4} \mathrm{Cl}(s) \rightleftarrows \mathrm{NH}_{3}(g)+\mathrm{HCl}(g)$$ Calculate the equilibrium constant \(K_{P}\) if the total pressure is \(2.2 \mathrm{~atm}\) at that temperature.

Write the expressions for the equilibrium constants \(K_{P}\) of the following thermal decomposition reactions: (a) \(2 \mathrm{NaHCO}_{3}(s) \rightleftarrows \mathrm{Na}_{2} \mathrm{CO}_{3}(s)+\mathrm{CO}_{2}(g)+\mathrm{H}_{2} \mathrm{O}(g)\) (b) \(2 \mathrm{CaSO}_{4}(s) \rightleftarrows 2 \mathrm{CaO}(s)+2 \mathrm{SO}_{2}(g)+\mathrm{O}_{2}(g)\).

Baking soda (sodium bicarbonate) undergoes thermal decomposition as follows: $$ 2 \mathrm{NaHCO}_{3}(s) \rightleftarrows \mathrm{Na}_{2} \mathrm{CO}_{3}(s)+\mathrm{CO}_{2}(g)+\mathrm{H}_{2} \mathrm{O}(g) $$ Would we obtain more \(\mathrm{CO}_{2}\) and \(\mathrm{H}_{2} \mathrm{O}\) by adding extra baking soda to the reaction mixture in (a) a closed vessel or (b) an open vessel?

The equilibrium constant \(K_{\mathrm{c}}\) for the reaction: $$ \mathrm{H}_{2}(g)+\mathrm{CO}_{2}(g) \rightleftarrows \mathrm{H}_{2} \mathrm{O}(g)+\mathrm{CO}(g) $$ is 4.2 at \(1650^{\circ} \mathrm{C}\). Initially \(0.80 \mathrm{~mol} \mathrm{H}_{2}\) and \(0.80 \mathrm{~mol}\) \(\mathrm{CO}_{2}\) are injected into a 5.0-L flask. Calculate the concentration of each species at equilibrium.

Which of the following statements is correct about a reacting system at equilibrium: (a) the concentrations of reactants are equal to the concentrations of products, (b) the rate of the forward reaction is equal to the rate of the reverse reaction.
See all solutions

Recommended explanations on Chemistry Textbooks

Making Measurements

Read Explanation

The Earths Atmosphere

Read Explanation

Physical Chemistry

Read Explanation

Chemical Analysis

Read Explanation

Chemical Reactions

Read Explanation

Nuclear Chemistry

Read Explanation
View all explanations

What do you think about this solution?

We value your feedback to improve our textbook solutions.

Study anywhere. Anytime. Across all devices.