EXPLORING CHEMICAL ANALYSIS W/ACCESS
EXPLORING CHEMICAL ANALYSIS W/ACCESS
5th Edition
ISBN: 9781319090180
Author: Harris
Publisher: MAC HIGHER
Question
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Chapter 11, Problem 11.18P

(a)

Interpretation Introduction

Interpretation:

Value of pKa for acid BH+ has to be calculated.

Concept Introduction:

Ionic product of water is denoted by Kw and is expressed as follows:

  Kw=KaKb

Here,

Ka is acid equilibrium constant.

Kb is base equilibrium constant.

(b)

Interpretation Introduction

Interpretation:

Value of pH at [BH+] equals to [B] has to be calculated.

Concept Introduction:

The equation for buffer is described by Henderson-Hasselbach equation and it is a rearranged for of equilibrium constant, Ka. Consider an equation of dissociation of an acid as follows:

  HAH++A

Formula to calculate pH is as follows:

  pH=pKa+log([A][HA])

Here,

pKa is acid dissociation constant of weak acid HA.

[A] is concentration of conjugate base A

[HA] is concentration of acid HA.

(c)

Interpretation Introduction

Interpretation:

Among BH+ or B principal species at pH equals to 7 has to be determined.

Concept Introduction:

Refer to part (b).

(d)

Interpretation Introduction

Interpretation:

Value of [B][BH+] at pH 12 has to be determined.

Concept Introduction:

Refer to part (b).

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