---
title: "Buffers and Predominance Diagrams"
book: "School Chemistry — Grades 1 to 12"
subject: chemistry
language: en
chapter: 45
exercises: 15
source: https://one-course.com/books/chemistry/1/en/chapter/45-buffers-and-predominance-diagrams
license: CC-BY-NC-SA-4.0
credit: "One Chemistry Book, One Course (one-course.com)"
---

# Chapter 45 — Buffers and Predominance Diagrams

A blood test reports the [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) of arterial blood: normally between 7.38 and 7.42. Muscles at work pour acids into the blood, the lungs blow carbon dioxide out of it, food brings in acids and bases; yet the [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) hardly moves. A pair of species, an acid and its own base, absorbs these shocks. This chapter shows which form of a couple dominates at a given [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph), how a few drops of a coloured couple reveal the [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph), and how a [mixture](https://one-course.com/books/chemistry/1/en/chapter/8-pure-substances-and-mixtures#def-g6-pure-substances-and-mixtures-mixture) of an acid and its base holds the [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) steady.

**You already know.**

[Acid–base couples](https://one-course.com/books/chemistry/1/en/chapter/44-acids-and-bases-ka-and-pka#def-g12-ka-and-pka-bronsted), $K_a$ and $pK_a$; the [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) of a solution ([Chapter 44](https://one-course.com/books/chemistry/1/en/chapter/44-acids-and-bases-ka-and-pka#ch-g12-ka-and-pka), [Chapter 18](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#ch-g9-acids-bases-ph)).

![Blood samples: their pH is held within a narrow range.](https://one-course.com/images/onecourse/chapters/chemistry-1/g12-buffers-predominance/img-5cdfaccbd12e.jpg)

*Blood samples: their [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) is held within a narrow range.*

## 45.1 Predominance diagrams

**Proposition 45.1 (Henderson’s relation).**

In any [aqueous solution](https://one-course.com/books/chemistry/1/en/chapter/9-solutions-and-solubility#def-g6-solutions-and-solubility-solute) containing the couple $\ce{HA}$/$\ce{A-}$,

$$
\mathrm{pH} = pK_a + \log\frac{[\ce{A-}]}{[\ce{HA}]} .
$$

**Proof.** From $K_a = \dfrac{[\ce{A-}][\ce{H3O+}]}{[\ce{HA}]c^\circ}$, take $-\log$ of both sides: $pK_a = \mathrm{pH} - \log\dfrac{[\ce{A-}]}{[\ce{HA}]}$. ∎

**Definition 45.2 (Predominance and distribution diagrams).**

The *predominance diagram* of a couple is a [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) axis divided at $pK_a$: below, the acid HA predominates ($[\ce{HA}] > [\ce{A-}]$), above, the base $\ce{A-}$. The *distribution diagram* shows the fraction of each form, $[\ce{HA}]/c$ and $[\ce{A-}]/c$, against the [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph); the two curves cross at $\mathrm{pH} = pK_a$.

**Method 45.3 (Drawing a predominance diagram).**

1. Draw a [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) axis from 0 to 14 and mark the $pK_a$ of the couple.
2. Write the acid to the left of $pK_a$ and the base to the right.
3. For a species with several couples (an acid with two hydrogens to give, an amino acid), mark every $pK_a$ : each interval belongs to one form.
4. One unit from $pK_a$ , the ratio is already 10 to 1: the minor form is under $10\,\%$ .

![Predominance diagrams of four couples: the acid (left, red) dominates below its pK_a, the base (right, blue) above.](https://one-course.com/images/onecourse/chapters/chemistry-1/g12-buffers-predominance/fig-6e70ab8ad5e5.svg)

*[Predominance diagrams](#def-g12-buffers-predominance-predominance) of four couples: the acid (left, red) dominates below its $pK_a$, the base (right, blue) above.*

![Distribution diagrams, computed from the pK_a values. Left: ethanoic acid, the curves cross at 4.76. Right: glycine, H2N-CH2-COOH, with two couples (pK_a 2.35 and 9.78): the cation H3N+-CH2-COOH, the zwitterion H3N+-CH2-COO- and the anion H2N-CH2-COO-.](https://one-course.com/images/onecourse/chapters/chemistry-1/g12-buffers-predominance/fig-18fe9284c939.svg)

![Distribution diagrams, computed from the pK_a values. Left: ethanoic acid, the curves cross at 4.76. Right: glycine, H2N-CH2-COOH, with two couples (pK_a 2.35 and 9.78): the cation H3N+-CH2-COOH, the zwitterion H3N+-CH2-COO- and the anion H2N-CH2-COO-.](https://one-course.com/images/onecourse/chapters/chemistry-1/g12-buffers-predominance/fig-a071b0830806.svg)

*[Distribution diagrams](#def-g12-buffers-predominance-predominance), computed from the $pK_a$ values. Left: ethanoic acid, the curves cross at 4.76. Right: glycine, $\ce{H2N-CH2-COOH}$, with two couples ($pK_a$ 2.35 and 9.78): the [cation](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) $\ce{H3N+-CH2-COOH}$, the zwitterion $\ce{H3N+-CH2-COO-}$ and the [anion](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) $\ce{H2N-CH2-COO-}$.*

**Example 45.4 (Glycine in the body).**

At the [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) of blood, about 7.4, glycine lies between its two $pK_a$ values: it is almost entirely in the zwitterion form, carrying a positive charge on its nitrogen and a negative charge on its carboxylate, neutral overall. Every amino acid behaves the same way.

## 45.2 Acid–base indicators

**Definition 45.5 (Acid–base indicator, colour-change range).**

An *acid–base indicator* is a couple $\ce{HInd}$/$\ce{Ind-}$ whose two forms have different colours, used in very small amounts. Its *colour-change range* is the [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) interval over which the colour is seen to change, roughly $pK_a - 1$ to $pK_a + 1$: below, the colour of $\ce{HInd}$ is seen, above, that of $\ce{Ind-}$, and in between a [mixture](https://one-course.com/books/chemistry/1/en/chapter/8-pure-substances-and-mixtures#def-g6-pure-substances-and-mixtures-mixture) of the two.

![Colours of four indicators against the pH; the shaded parts are the colour-change ranges. Thymol blue, with two couples, has two ranges.](https://one-course.com/images/onecourse/chapters/chemistry-1/g12-buffers-predominance/fig-62a0a48a6b74.svg)

*Colours of four indicators against the [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph); the shaded parts are the [colour-change ranges](#def-g12-buffers-predominance-indicator). Thymol blue, with two couples, has two ranges.*

**Method 45.6 (Choosing an indicator).**

To detect when a solution passes a given [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) (the [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) at the end of a [titration](https://one-course.com/books/chemistry/1/en/chapter/36-titration#def-g11-titration-titration), for example), choose an indicator whose [colour-change range](#def-g12-buffers-predominance-indicator) contains that [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph): the colour then changes exactly there.

## 45.3 Buffer solutions

**Definition 45.7 (Buffer solution).**

A *buffer solution* is a solution whose [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) changes very little when a little acid or base is added, or when it is diluted. It is usually made of a [weak acid](https://one-course.com/books/chemistry/1/en/chapter/44-acids-and-bases-ka-and-pka#def-g12-ka-and-pka-strong-acid) and its conjugate base in comparable amounts; its [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) is then close to the $pK_a$ of the couple.

**Proposition 45.8 (Why a buffer resists).**

In a buffer of $\ce{HA}$ and $\ce{A-}$, an added [strong acid](https://one-course.com/books/chemistry/1/en/chapter/44-acids-and-bases-ka-and-pka#def-g12-ka-and-pka-strong-acid) is consumed by $\ce{A-}$ ($\ce{A- + H3O+ -> HA + H2O}$) and an added [strong base](https://one-course.com/books/chemistry/1/en/chapter/44-acids-and-bases-ka-and-pka#def-g12-ka-and-pka-strong-acid) by $\ce{HA}$ ($\ce{HA + OH- -> A- + H2O}$); the ratio $[\ce{A-}]/[\ce{HA}]$, and so the [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph), changes only a little. [Dilution](https://one-course.com/books/chemistry/1/en/chapter/26-concentration-and-dilution#def-g10-concentration-and-dilution-dilution) does not change the ratio at all.

**Proof.** By Henderson’s relation the [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) depends only on the ratio. Adding $1\,\mathrm{mmol}$ of acid to a buffer holding $10\,\mathrm{mmol}$ of each form changes the ratio from $10/10$ to $9/11$, and the [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) by $\log(9/11) = -0.09$ only. ∎

![Adding hydrochloric acid to pure water and to a buffer of ethanoic acid and sodium ethanoate (0.10\, mol/ L each). The pH of water falls from 7 to about 2; that of the buffer from 4.76 to 4.67.](https://one-course.com/images/onecourse/chapters/chemistry-1/g12-buffers-predominance/fig-00a0f06144e3.svg)

*Adding hydrochloric acid to pure water and to a buffer of ethanoic acid and sodium ethanoate ($0.10\,\mathrm{mol}/\mathrm{L}$ each). The [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) of water falls from 7 to about 2; that of the buffer from 4.76 to 4.67.*

**Method 45.9 (Preparing a buffer).**

1. Choose a couple whose $pK_a$ is within one unit of the [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) wanted (ideally close to it).
2. Compute the ratio $[\ce{A-}]/[\ce{HA}] = 10^{\mathrm{pH} - pK_a}$ .
3. [Mix](https://one-course.com/books/chemistry/1/en/chapter/2-mixing-and-dissolving#def-g2-mixing-and-dissolving-mix) the [weak acid](https://one-course.com/books/chemistry/1/en/chapter/44-acids-and-bases-ka-and-pka#def-g12-ka-and-pka-strong-acid) and a salt of its base in that ratio, at concentrations high enough for the amounts of acid or base to be absorbed.

**In the lab — Preparing a buffer at pH 4.8.**

$50.0\,\mathrm{mL}$ of ethanoic acid at $0.10\,\mathrm{mol}/\mathrm{L}$ are mixed with $50.0\,\mathrm{mL}$ of sodium ethanoate at $0.10\,\mathrm{mol}/\mathrm{L}$; a [pH meter](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph-paper) reads about 4.8. A few drops of hydrochloric acid at $1\,\mathrm{mol}/\mathrm{L}$ barely move the reading, while the same drops in $100\,\mathrm{mL}$ of distilled water bring it down to about 3.

## 45.4 Buffers in living things

**Example 45.10 (The blood’s buffer).**

The main buffer of blood is the couple of dissolved carbon dioxide and the hydrogencarbonate [ion](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion), $\ce{CO2,H2O}$/$\ce{HCO3-}$. In blood, the physiologists use for it the relation $\mathrm{pH} = 6.1 +
\log\big([\ce{HCO3-}]/[\ce{CO2}]\big)$. The lungs remove carbon dioxide, the kidneys adjust the hydrogencarbonate: together they hold the ratio, and so the [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph).

![Testing swimming-pool water: the colours of indicators give the pH.](https://one-course.com/images/onecourse/chapters/chemistry-1/g12-buffers-predominance/img-a2998804630a.jpg)

*Testing swimming-pool water: the colours of indicators give the [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph).*

## 45.5 Exercises

**Exercise 45.1 ★.**

Which form of the couple $\ce{CH3COOH}$/$\ce{CH3COO-}$ ($pK_a = 4.76$) predominates at [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 2, at [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 4.76 and at [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 7?

**Solution of Exercise 45.1.**

[pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 2: $\ce{CH3COOH}$. [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 4.76: both in equal amounts. [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 7: $\ce{CH3COO-}$.

**Exercise 45.2 ★.**

On the [distribution diagram](#def-g12-buffers-predominance-predominance) of ethanoic acid, read the fraction of $\ce{CH3COO-}$ at [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 4 and at [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 6.

**Solution of Exercise 45.2.**

[pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 4: $1/(1 + 10^{0.76}) = 0.15$. [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 6: $1/(1 + 10^{-1.24}) = 0.95$.

**Exercise 45.3 ★.**

What colour does bromothymol blue show at [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 5? At [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 7? At [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 9?

**Solution of Exercise 45.3.**

Yellow; green (inside its range); blue.

**Exercise 45.4 ★.**

Which form of the couple $\ce{NH4+}$/$\ce{NH3}$ predominates in a solution at [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 7.4? At [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 11?

**Solution of Exercise 45.4.**

At [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 7.4, below 9.26: $\ce{NH4+}$. At [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 11: $\ce{NH3}$.

**Exercise 45.5 ★.**

Why are indicators used in very small amounts?

**Solution of Exercise 45.5.**

An indicator is itself an [acid–base couple](https://one-course.com/books/chemistry/1/en/chapter/44-acids-and-bases-ka-and-pka#def-g12-ka-and-pka-bronsted): in large amounts it would change the [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) it is meant to show.

**Exercise 45.6 ★★.**

Compute the ratio $[\ce{CH3COO-}]/[\ce{CH3COOH}]$ at [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 3.76, 4.76 and 5.76.

**Solution of Exercise 45.6.**

$10^{\mathrm{pH} - 4.76}$: 0.1; 1; 10.

**Exercise 45.7 ★★.**

A [titration](https://one-course.com/books/chemistry/1/en/chapter/36-titration#def-g11-titration-titration) ends at [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 8.7. Which of the four indicators of the figure would you choose? Why not methyl red?

**Solution of Exercise 45.7.**

Phenolphthalein (8.0–10.0) or thymol blue (8.0–9.1): their ranges contain 8.7. Methyl red changes between 4.2 and 6.3, far from 8.7: it would have changed long before.

**Exercise 45.8 ★★.**

A buffer contains $0.20\,\mathrm{mol}/\mathrm{L}$ of ethanoic acid and $0.10\,\mathrm{mol}/\mathrm{L}$ of sodium ethanoate. Compute its [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph).

**Solution of Exercise 45.8.**

$\mathrm{pH} = 4.76 + \log(0.10/0.20) = 4.76 - 0.30 = 4.46$.

**Exercise 45.9 ★★.**

Using the glycine diagram, give the predominant form at [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 1, 6 and 12, with its charge.

**Solution of Exercise 45.9.**

[pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 1: the [cation](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) $\ce{H3N+-CH2-COOH}$, charge $+1$. [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 6: the zwitterion, overall charge 0. [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 12: the [anion](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) $\ce{H2N-CH2-COO-}$, charge $-1$.

**Exercise 45.10 ★★.**

Read the response curves: by how much does the [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) of water fall after $1.0\,\mathrm{mL}$ of acid? And that of the buffer?

**Solution of Exercise 45.10.**

Water: from 7.0 to $-\log(1.0 \times 10^{-4}/0.101) = 3.0$, a fall of 4 units. Buffer: from 4.76 to $4.76 + \log(9.9/10.1) = 4.75$, a fall of 0.01.

**Exercise 45.11 ★★.**

Which couple of the predominance figure would you choose to make a buffer at [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 9.5? In what ratio would you [mix](https://one-course.com/books/chemistry/1/en/chapter/2-mixing-and-dissolving#def-g2-mixing-and-dissolving-mix) its two forms?

**Solution of Exercise 45.11.**

$\ce{NH4+}$/$\ce{NH3}$ ($pK_a = 9.26$). Ratio $[\ce{NH3}]/[\ce{NH4+}] = 10^{9.5 - 9.26} = 1.7$.

**Exercise 45.12 ★★★.**

The ethanoate buffer of the figure ($10\,\mathrm{mmol}$ of each form) receives hydrochloric acid. How much acid can it take before its [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) has fallen by one unit? Why is a more concentrated buffer said to have a larger capacity?

**Solution of Exercise 45.12.**

The [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) falls by one unit when the ratio reaches $1/10$: $(10 - n)/(10 + n) = 0.1$, so $n = 8.2\,\mathrm{mmol}$. A buffer holding more of each form can absorb more acid or base for the same change of the ratio: it has a larger capacity.

**Exercise 45.13 ★★★.**

What volume of sodium ethanoate solution at $0.10\,\mathrm{mol}/\mathrm{L}$ must be added to $100\,\mathrm{mL}$ of ethanoic acid at $0.10\,\mathrm{mol}/\mathrm{L}$ to obtain a buffer at [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 5.0?

**Solution of Exercise 45.13.**

Ratio $10^{5.0 - 4.76} = 1.74$; the acid amounts to $10\,\mathrm{mmol}$, so $17.4\,\mathrm{mmol}$ of ethanoate, that is $174\,\mathrm{mL}$ of the solution.

**Exercise 45.14 ★★★.**

Thymol blue has two [colour-change ranges](#def-g12-buffers-predominance-indicator). Explain why, and give its colour at [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 1, 5 and 10.

**Solution of Exercise 45.14.**

It has two [acid–base couples](https://one-course.com/books/chemistry/1/en/chapter/44-acids-and-bases-ka-and-pka#def-g12-ka-and-pka-bronsted), with two $pK_a$, hence two changes of colour: red at [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 1, yellow at [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 5, blue at [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 10.

**Exercise 45.15 ★★★.**

A buffer at [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 4.76 is diluted ten times with distilled water. What is its new [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph), according to Henderson’s relation? What happens if a [strong acid](https://one-course.com/books/chemistry/1/en/chapter/44-acids-and-bases-ka-and-pka#def-g12-ka-and-pka-strong-acid) of the same [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) is diluted ten times?

**Solution of Exercise 45.15.**

[Dilution](https://one-course.com/books/chemistry/1/en/chapter/26-concentration-and-dilution#def-g10-concentration-and-dilution-dilution) divides both concentrations by 10: the ratio, and so the [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) (4.76), do not change. A [strong acid](https://one-course.com/books/chemistry/1/en/chapter/44-acids-and-bases-ka-and-pka#def-g12-ka-and-pka-strong-acid) diluted ten times rises by one [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) unit.

## 45.6 Problem: Blood’s Buffer

**Problem 45.1.**

Weekend problem — what ratio of hydrogencarbonate to carbon dioxide keeps blood at pH 7.4?

The [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) of arterial blood is normally between 7.38 and 7.42. Its main buffer is the couple $\ce{CO2,H2O}$/$\ce{HCO3-}$, for which physiologists use $\mathrm{pH} = 6.1 + \log\big([\ce{HCO3-}]/[\ce{CO2}]\big)$. The normal hydrogencarbonate concentration of blood is 22 to $28\,\mathrm{mmol}/\mathrm{L}$.

**Part I — The couple.**

1. Write the reaction of dissolved carbon dioxide with water that gives hydrogencarbonate [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) .
2. Which species is the acid, which the base?
3. The value 6.1 differs from the 6.37 of the table of $pK_a$ . Give a reason (think of the temperature of the body and of the other [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) present).
4. What amount of hydrogencarbonate do $5.0\,\mathrm{L}$ of blood hold at $24\,\mathrm{mmol}/\mathrm{L}$ ?

**Part II — Predominance.**

5. Draw the [predominance diagram](#def-g12-buffers-predominance-predominance) of the couple with $pK = 6.1$ .
6. Which form predominates in blood?
7. Is blood slightly acidic or slightly basic?

**Part III — The ratio.**

8. Using the relation, compute the ratio $[\ce{HCO3-}]/[\ce{CO2}]$ at [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 7.4.
9. With $[\ce{HCO3-}] = 24\,\mathrm{mmol}/\mathrm{L}$ , compute $[\ce{CO2}]$ .
10. Compute the ratio at the two ends of the normal range, 7.38 and 7.42.
11. What fraction of the couple is in the hydrogencarbonate form at [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 7.4?
12. Blood that is too basic may reach [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 7.6. What is the ratio then?

**Part IV — When the balance is lost.**

13. During intense effort, acids enter the blood. Which form of the couple consumes them? Write the reaction.
14. If the [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) fell to 7.1, what would the ratio become?
15. With unchanged hydrogencarbonate, how much would the carbon dioxide have to increase? What do the lungs do to fight back?
16. Why is a [weak acid](https://one-course.com/books/chemistry/1/en/chapter/44-acids-and-bases-ka-and-pka#def-g12-ka-and-pka-strong-acid) with its base, rather than a [strong acid](https://one-course.com/books/chemistry/1/en/chapter/44-acids-and-bases-ka-and-pka#def-g12-ka-and-pka-strong-acid) , the right tool to hold a [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) ?
17. By how much does the [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) change if both concentrations are divided by two? Why?
18. State the final answer: what is the hydrogencarbonate to carbon dioxide ratio of blood at [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) 7.4?

**Solution of Problem 45.1.**

**1.** $\ce{CO2 + 2H2O <=> HCO3- + H3O+}$.

**2.** Dissolved carbon dioxide (with water) is the acid, hydrogencarbonate the base.

**3.** The table value is for $25\,{}^{\circ}\mathrm{C}$ in pure water; blood is at $37\,{}^{\circ}\mathrm{C}$ and full of other [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion), which change the constant (and physiologists count all the dissolved carbon dioxide).

**4.** At $24\,\mathrm{mmol}/\mathrm{L}$, $0.024 \times 5.0 = 0.12\,\mathrm{mol}$.

**5.** A [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) axis cut at 6.1: $\ce{CO2}$ below, $\ce{HCO3-}$ above.

**6.** At 7.4, above 6.1: hydrogencarbonate.

**7.** Slightly basic: its [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) is above 7.

**8.** $10^{7.4 - 6.1} = 10^{1.3} = 20$.

**9.** $24 / 20 = 1.2\,\mathrm{mmol}/\mathrm{L}$.

**10.** $10^{1.28} = 19$ and $10^{1.32} = 21$.

**11.** $20/21 = 95\,\%$.

**12.** $10^{7.6 - 6.1} = 10^{1.5} = 32$.

**13.** The hydrogencarbonate [ion](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion): $\ce{HCO3- + H3O+ -> CO2 + 2H2O}$.

**14.** $10^{7.1 - 6.1} = 10$.

**15.** From $24/20 = 1.2$ to $24/10 = 2.4\,\mathrm{mmol}/\mathrm{L}$: doubled. The lungs breathe faster and deeper, to blow the extra carbon dioxide out.

**16.** A [weak acid](https://one-course.com/books/chemistry/1/en/chapter/44-acids-and-bases-ka-and-pka#def-g12-ka-and-pka-strong-acid) and its base can each absorb what is added, and the [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) depends only on their ratio; a [strong acid](https://one-course.com/books/chemistry/1/en/chapter/44-acids-and-bases-ka-and-pka#def-g12-ka-and-pka-strong-acid) would only push the [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph) one way.

**17.** Not at all: the ratio, and so the [pH](https://one-course.com/books/chemistry/1/en/chapter/18-acids-bases-and-ph#def-g9-acids-bases-ph-ph), stay the same.

**18.** About 20.
