CHEMISTRY >CUSTOM<
CHEMISTRY >CUSTOM<
8th Edition
ISBN: 9781309097182
Author: SILBERBERG
Publisher: MCG/CREATE
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Chapter 19, Problem 19.106P
Interpretation Introduction

Interpretation:

The pH buffer made from 475mL of 0.200M benzoic acid and 25mL of 2.00MNaOH with make 500mL of 0.200MHCOOH and 2.00MNaOH volume has to be calculated.

Concept Introduction:

pH definition:

The concentration of hydrogen ion is measured using pH scale.  The acidity of aqueous solution is expressed by pH scale.

The pH of a solution is defined as the negative base-10 logarithm of the hydrogen or hydronium ion concentration.

  pH=-log[H3O+]

Buffer solution:

  • Buffer solution is defined as a solution that oppose changes in pH while adding little amount of either an acid or a base. In general, addition of acid or base does not affect the pH in buffer solution but if it is more than amount of conjugate base or conjugate acid, then buffer loses its buffering capacity.
  • Buffer solution is a combination of a weak acid and its conjugate base or a weak base and its conjugate acid.

Henderson-Hasselbalch equation:

The pH at an intermediate stage of the titration is calculated by using the following equation,

  pH=pKa+log[base][acid]where, pH=-log[H+] pKa=-logKa(Ka-aciddissociationconstant)

This equation is known as Henderson-Hasselbalch equation.

Expert Solution & Answer
Check Mark

Answer to Problem 19.106P

The required volume of the base NaOH is 36mL and the volume of the formic acid HCOOH is 0.464=464mL.

Explanation of Solution

Consider the following chemical reaction,

  C6H5COOH(aq)+NaOH(aq)Na2+(aq)+C6H5COO(aq)+H2O(l)

Record the given data,

Concentration of HCOOH=0.200M

Concentration of NaOH=2.00M

Volume of solution V=500.0mL

Concentration of benzoic acid =0.200M

Calculate the number of mole of benzoic acid present in the solutions,

  MolesofC6H5COOH=(0.200molC6H5COOHL)(103L1mL)(475mL)=0.0950molofC6H5COOH

Calculate the number of mole of NaOH present in the solution,

  MolesofNaOH=(2.00molNaOHL)(103L1mL)(25mL)=0.050molNaOH

NaOH is the limiting reagent,

Write the balance equation of the reaction,

C6H5COOH(aq)+NaOH(aq)Na2+(aq)+C6H5COO(aq)+H2O(l)Initial(M):0.0950mol0.050mol0Change(M):0.050mol0.050mol+0.050molEquilibrium(M):0.045mol0mol0.050mol

The concentrations after the reaction are,

  [C6H5COOH]=(0.045molC6H5COOH(475+25)mL)(1mL103L)=0.090MC6H5COOH

  [C6H5COO]=(0.050molC6H5COO(475+25)mL)(1mL103L)=0.10MC6H5COO

Calculate the pH of the reaction

Henderson-Hasselbalch equation is,

  pH=pKa+log[base][acid]

  pH=pKa+log(C6H5COOC6H5COOH)

The Ka for benzoic acid is 6.3×105 (this value referred from Appendix table).

The pKa is log(6.3×105)=4.201

The pKa value is plugging above equation, to solve pH of the reaction,

  pH=4.201+log(0.100.090)=4.201+log(1.1111)=4.201+0.045757=4.24675pH=4.2

Calculate the formic acid (H-COOH)and use the Henderson-Hasselbalch equation,

  pH=pKa+log[base][acid]

The Ka for formic acid is 1.8×104 (this value referred from Appendix table).

  The pKa is log(1.8×104)=3.7447

  pH=pKa+log(HCOOHCOOH)

Benzoic acid pH value is  4.24675

Formic acid pKa value is 3.7447 

The pH and pKa values are plugging above equation,

  4.24676=3.7447+log(HCOOHCOOH)4.246763.7447=log(HCOOHCOOH)

Hence,

  log(HCOOHCOOH)=0.50206pKavalueforformicacidis3.177313(HCOOHCOOH)=3.177313(HCOO)=3.177313(HCOOH)

Since the conjugate acid and the conjugate base are in the same volume, the mole ratio and the molarity ratios are identical.

  MolesofHCOO=3.177313molHCOOH

The total volume of the solution is,

  =(500mL)×(103L1mL)=0.500L

Let,

  Va= Volume of acid solution added and

  Vb= Volume of base solution added

Thus,

    Va+Vb=0.500L

The reaction between the formic acid and the sodium hydroxide is,

  HOOH(aq)+NaOH(aq)HCOONa(aq)+H2O(l)

The moles of NaOH added equal the moles of HCOOH reacted and the moles of HCOONa formed.

  MolesNaOH=(2.00molNaOH/L)(Vb)=2.00VbmolTotalmolesHCOOH=(0.200molHCOOH/L)(Va)=2.00Vamol  

The stoichiometric ratios in this reaction are 1:1 ratio,

  MolesHCOOHremainingaftertheraction=(0.200Va2.00Vb)molMolesHCOO=molesHCOONa=molesofNaOH=2.00Vb

Using these moles and the mole ratio determined for the buffer solution gives,

  MolesHCOO=3.177313molHCOOH2.00Vbmol=3.177313(0.200Va2.00Vb)mol2.00Vb=0.6354626Va6.354626VbaddedforVb_8.354626Vb=0.6354626Va 

The volume relationship given above calculation,

  Va+Vb=0.500LVa=(0.500Vb)L

Calculate for the volume (V)

  8.354626Vb=0.6354626Va(0.500Vb)8.354626Vb=0.31773130.6354626Vb

Added for volume (Vb)

  8.9900886Vb=0.3177313Vb=0.31773138.9900886Vb=0.0353424Vb=0.035LNaOH

Next calculate for volume (Va)

  Va=0.5000.0353424=0.4646576=0.465LHCOOH

Hence, the volume of NaOH is 0.5000.464=0.036L=36mL and the volume of the formic acid HCOOH is 0.464=464mL.

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Chapter 19 Solutions

CHEMISTRY >CUSTOM<

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