Chemistry [hardcover]
Chemistry [hardcover]
5th Edition
ISBN: 9780393264845
Author: Geoffery Davies
Publisher: NORTON
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Chapter 21, Problem 21.59QP
Interpretation Introduction

Interpretation: The pH value of 1.00×103M solution of selenocysteine is to be calculated.

Concept introduction: The negative logarithm of the hydrogen ion concentration of a solution is known as pH .

The pH is calculated by the formula,

pH=log[H+]

To determine: The pH value of 1.00×103M solution of selenocysteine.

Expert Solution & Answer
Check Mark

Answer to Problem 21.59QP

Solution

The pH value of 1.00×103M solution of selenocysteine is 3.11_ .

Explanation of Solution

Explanation

Given

The concentration of solution of selenocysteine is 1.00×103M .

The value of pKa1 is 2.21 .

The value of pKa2 is 5.43 .

The negative logarithm of the hydrogen ion concentration of a solution is known as pH .

The pH is calculated by the formula,

pH=log[H+] (1)

Where,

  • [H+] is concentration of H+ ions.

The negative logarithm to the equilibrium constant for the acidic reaction is known as pKa . It is calculated by the formula,

pKa=logKa

Where,

  • Ka is equilibrium constant for the acidic reaction.

The value of Ka is calculated by the formula,

Ka=10pKa (2)

The reaction of selenocysteine in ionized form is,

Selenocysteine(aq)H+(aq)+Selenocysteine(aq)

The equilibrium constant for the above reaction is,

Ka=[H+][Selenocysteine][Selenocysteine] (3)

Where,

  • Ka is equilibrium constant for the acidic reaction.
  • [H+] is concentration of H+ ions.
  • [Selenocysteine] is concentration of selenocysteine ions.
  • [Selenocysteine] is concentration of selenocysteine.

The value of pKa is calculated by the formula,

pKa=pKa2pKa1

Substitute the given values of pKa1 and pKa2 in the above expression.

pKa=5.432.21=3.22

Substitute the value of pKa in equation (2) to get the value of Ka .

Ka=103.22=6.03×104

In the beginning of the reaction,

The initial concentration of selenocysteine is 1.00×103M .

The initial concentration of selenocysteine ions is 0 .

The initial concentration of H+ ions is 0 .

At equilibrium,

The moles of reactant (selenocysteine) that is used up is assumed to be x .

Therefore, concentration of selenocysteine is,

[Selenocysteine]=(1.00×103x)M

The value of x is very small in comparison with 1.00×103M . So,

[Selenocysteine]=(1.00×103x)M1.00×103M

The concentration of product is assumed to be x that is increased.

[H+]=[Selenocysteine]=xM

The table to show concentration of reactant and products

[Selenocysteine]M[Selenocysteine]M[H+]MIntial1.00×10300Changex+x+xEqulibrium1.00×103x1.00×103xx

Substitute the values of Ka , [Selenocysteine] , [Selenocysteine] and [H+] in the equation (3) .

6.03×104=(x)(x)1.00×103Mx=7.77×104M

Therefore, concentration of H+ is 7.77×104M .

Substitute the value of concentration of H+ in equation (1) to calculate the value of pH .

pH=log(7.77×104)=3.11

Therefore, pH value of 1.00×103M solution of selenocysteine is 3.11_ .

Conclusion

The pH value of 1.00×103M solution of selenocysteine is 3.11_ .

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Chapter 21 Solutions

Chemistry [hardcover]

Ch. 21 - Prob. 21.6VPCh. 21 - Prob. 21.7VPCh. 21 - Prob. 21.8VPCh. 21 - Prob. 21.9VPCh. 21 - Prob. 21.10VPCh. 21 - Prob. 21.11QPCh. 21 - Prob. 21.12QPCh. 21 - Prob. 21.13QPCh. 21 - Prob. 21.14QPCh. 21 - Prob. 21.15QPCh. 21 - Prob. 21.16QPCh. 21 - Prob. 21.17QPCh. 21 - Prob. 21.18QPCh. 21 - Prob. 21.19QPCh. 21 - Prob. 21.20QPCh. 21 - Prob. 21.21QPCh. 21 - Prob. 21.22QPCh. 21 - Prob. 21.23QPCh. 21 - Prob. 21.24QPCh. 21 - Prob. 21.25QPCh. 21 - Prob. 21.26QPCh. 21 - Prob. 21.27QPCh. 21 - Prob. 21.28QPCh. 21 - Prob. 21.29QPCh. 21 - Prob. 21.30QPCh. 21 - Prob. 21.31QPCh. 21 - Prob. 21.32QPCh. 21 - Prob. 21.33QPCh. 21 - Prob. 21.34QPCh. 21 - Prob. 21.35QPCh. 21 - Prob. 21.36QPCh. 21 - Prob. 21.37QPCh. 21 - Prob. 21.38QPCh. 21 - Prob. 21.39QPCh. 21 - Prob. 21.40QPCh. 21 - Prob. 21.41QPCh. 21 - Prob. 21.42QPCh. 21 - Prob. 21.43QPCh. 21 - Prob. 21.44QPCh. 21 - Prob. 21.45QPCh. 21 - Prob. 21.46QPCh. 21 - Prob. 21.47QPCh. 21 - Prob. 21.48QPCh. 21 - Prob. 21.49QPCh. 21 - Prob. 21.50QPCh. 21 - Prob. 21.51QPCh. 21 - Prob. 21.52QPCh. 21 - Prob. 21.53QPCh. 21 - Prob. 21.54QPCh. 21 - Prob. 21.55QPCh. 21 - Prob. 21.56QPCh. 21 - Prob. 21.57QPCh. 21 - Prob. 21.58QPCh. 21 - Prob. 21.59QPCh. 21 - Prob. 21.60QPCh. 21 - Prob. 21.61QPCh. 21 - Prob. 21.62QPCh. 21 - Prob. 21.63QPCh. 21 - Prob. 21.64QPCh. 21 - Prob. 21.65QPCh. 21 - Prob. 21.66QPCh. 21 - Prob. 21.67QPCh. 21 - Prob. 21.68QPCh. 21 - Prob. 21.69QPCh. 21 - Prob. 21.70QPCh. 21 - Prob. 21.71QPCh. 21 - Prob. 21.72QPCh. 21 - Prob. 21.73QPCh. 21 - Prob. 21.74QPCh. 21 - Prob. 21.75QPCh. 21 - Prob. 21.76QPCh. 21 - Prob. 21.77QPCh. 21 - Prob. 21.78QPCh. 21 - Prob. 21.79QPCh. 21 - Prob. 21.80QPCh. 21 - Prob. 21.81QPCh. 21 - Prob. 21.82QPCh. 21 - Prob. 21.83QPCh. 21 - Prob. 21.84QPCh. 21 - Prob. 21.85QPCh. 21 - Prob. 21.86QP
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