Chapter 8, Problem 11P

Interpretation Introduction

(a)

Interpretation:

The equilibrium constant for the given reaction is to be stated. The value of $\Delta G°\text{'}$ for the given reaction is to be stated.

Concept introduction:

When any reaction is at equilibrium then a constant expresses a relationship between the reactant side and the product side. This constant is known as equilibrium constant. It is denoted by $K_{\text{eq}}$. The equilibrium constant is independent of the initial amount of the reactant and product.

Answer to Problem 11P

The equilibrium constant for the given reaction is $100$.

The value of $\Delta G°\text{'}$ for the given reaction is - $11.41\text{kJ}{\text{mol}}^{-1}$.

Explanation of Solution

The given reaction for the conversion of substrate (S) to product (P) is,

$\text{S}\underset{{10}^{-6}{\text{s}}^{-1}}{\overset{{10}^{-4}{\text{s}}^{-1}}{\rightleftarrows }}\text{P}$.

The given rate constant for forward reaction for the conversion of S to P is $k_{\text{F}}={10}^{-4}{\text{s}}^{-1}$.

The given rate constant for backward reaction for the conversion of P to S is $k_{\text{R}}={10}^{-6}{\text{s}}^{-1}$

The value of universal gas constant is $8.314\times {10}^{-3}\text{kJ}{\text{mol}}^{-1}{\text{K}}^{-1}$.

The standard temperature is $25°\text{C}$.

The conversion of degrees Celsius into Kelvin is done as,

$0°\text{C}=\text{273}\text{K}$

Thus, the given temperature becomes,

$\begin{array}{c}25°\text{C}=25+\text{273}\text{K}\\ =\text{298}\text{K}\end{array}$

The value of $K_{\text{eq}}$ is calculated by the expression,

$\begin{array}{c}{K}_{\text{eq}}=\frac{\left[\text{Forward rate constant}\right]}{\left[\text{Backward rate constant}\right]}\\ =\frac{k_{\text{F}}}{k_{\text{R}}}\end{array}$

Substitute the values of rate constants for forward reaction and backward reaction in the above expression.

$\begin{array}{c}{K}_{\text{eq}}=\frac{{10}^{-4}{\text{s}}^{-1}}{{10}^{-6}{\text{s}}^{-1}}\\ =100\end{array}$

Thus, the equilibrium constant for the given reaction is $100$.

The value of $\Delta G^{°\text{'}}$ is calculated by the expression,

$\Delta G^{°\text{'}}=-RT\ln K_{\text{eq}}$

Where,

• $R$ is the universal gas constant.
• $T$ is the temperature.
• $K_{\text{eq}}$ is the equilibrium constant.

Substitute the values of universal gas constant, temperature and equilibrium constant in the above formula.

$\begin{array}{c}\Delta G^{°\text{'}}=-8.314\times {10}^{-3}\text{kJ}{\text{mol}}^{-1}{\text{K}}^{-1}\times 298\text{K}\times \ln \left(100\right)\\ =8.315\times {10}^{-3}\text{kJ}{\text{mol}}^{-1}{\text{K}}^{-1}\times 298\text{K}\times 4.6052\\ =-11.41\text{kJ}{\text{mol}}^{-1}\end{array}$

Thus, the value of Gibbs free energy is - $11.41\text{kJ}{\text{mol}}^{-1}$.

Interpretation Introduction

(b)

Interpretation:

The rate constants for the given enzyme-catalyzed reaction if an enzyme increases the reaction rate by 100-fold are to be stated. The equilibrium constant for the given enzyme-catalyzed reaction is to be stated. The value of $\Delta G°\text{'}$ for the given enzyme-catalyzed reaction is to be stated.

Concept introduction:

When any reaction is at equilibrium then a constant expresses a relationship between the reactant side and the product side. This constant is known as equilibrium constant. It is denoted by $K_{\text{eq}}$. The equilibrium constant is independent of the initial amount of the reactant and product.

Answer to Problem 11P

The rate constants for the given enzyme-catalyzed reaction if an enzyme increases the reaction rate by 100-fold are $k_{\text{F}}={10}^{-2}{\text{s}}^{-1}$ and $k_{\text{R}}={10}^{-4}{\text{s}}^{-1}$.

The equilibrium constant for the given reaction is $100$.

The value of $\Delta G°\text{'}$ for the given reaction is - $11.41\text{kJ}{\text{mol}}^{-1}$.

Explanation of Solution

The given reaction for the conversion of substrate (S) to product (P) is:

$\text{S}\underset{{10}^{-6}{\text{s}}^{-1}}{\overset{{10}^{-4}{\text{s}}^{-1}}{\rightleftarrows }}\text{P}$.

The given rate constant for forward reaction for the conversion of S to P is $k_{\text{F}}={10}^{-4}{\text{s}}^{-1}$.

If an enzyme increases the forward reaction rate by hundred-fold, then the rate of forward reaction becomes $\begin{array}{c}{k}_{\text{F}}={10}^{-4}{\text{s}}^{-1}\times 100\\ ={10}^{-2}{\text{s}}^{-1}\end{array}$

The given rate constant for backward reaction for the conversion of P to S is $k_{\text{R}}={10}^{-6}{\text{s}}^{-1}$

If an enzyme increases the backward reaction rate by hundred-fold, then the rate of forward reaction becomes

$\begin{array}{c}{k}_{\text{F}}={10}^{-6}{\text{s}}^{-1}\times 100\\ ={10}^{-4}{\text{s}}^{-1}\end{array}$

The value of universal gas constant is $8.315\times {10}^{-3}\text{kJ}{\text{mol}}^{-1}{\text{K}}^{-1}$.

The standard temperature is $25°\text{C}$.

The conversion of degrees Celsius into Kelvin is done as,

$0°\text{C}=\text{273}\text{K}$

Thus, the given temperature becomes,

$\begin{array}{c}25°\text{C}=25+\text{273}\text{K}\\ =\text{298}\text{K}\end{array}$

The value of $K_{\text{eq}}$ is calculated by the expression:

$\begin{array}{c}{K}_{\text{eq}}=\frac{\left[\text{Concentration}\text{of}\text{Product}\right]}{\left[\text{Concentration}\text{of}\text{Substrate}\right]}\\ =\frac{k_{\text{F}}}{k_{\text{R}}}\end{array}$

Substitute the values of rate constants for forward reaction and backward reaction in the above expression.

$\begin{array}{c}{K}_{\text{eq}}=\frac{{10}^{-2}{\text{s}}^{-1}}{{10}^{-4}{\text{s}}^{-1}}\\ =100\end{array}$

Thus, the equilibrium constant for the given reaction is $100$.

The value of $\Delta G^{°\text{'}}$ is calculated by the expression,

$\Delta G^{°\text{'}}=-RT\ln K_{\text{eq}}$

Where,

• $R$ is the universal gas constant.
• $T$ is the temperature.
• $K_{\text{eq}}$ is the equilibrium constant.

Substitute the values of universal gas constant, temperature and equilibrium constant in the above formula.

$\begin{array}{c}\Delta G^{°\text{'}}=-8.315\times {10}^{-3}\text{kJ}{\text{mol}}^{-1}{\text{K}}^{-1}\times 298\text{K}\times \ln \left(100\right)\\ =8.315\times {10}^{-3}\text{kJ}{\text{mol}}^{-1}{\text{K}}^{-1}\times 298\text{K}\times 4.6052\\ =-11.41\text{kJ}{\text{mol}}^{-1}\end{array}$

Thus, the value of Gibbs free energy is - $11.41\text{kJ}{\text{mol}}^{-1}$.