---
title: "Dissolving Ionic and Molecular Solids"
book: "School Chemistry — Grades 1 to 12"
subject: chemistry
language: en
chapter: 31
exercises: 15
source: https://one-course.com/books/chemistry/1/en/chapter/31-dissolving-ionic-and-molecular-solids
license: CC-BY-NC-SA-4.0
credit: "One Chemistry Book, One Course (one-course.com)"
---

# Chapter 31 — Dissolving Ionic and Molecular Solids

A pinch of salt stirred into water vanishes in seconds; the same pinch stirred into cooking oil lies at the bottom of the glass, unchanged, for as long as anyone cares to watch. A greasy pan rinsed under the tap stays greasy; one drop of washing-up liquid, and the grease lifts off. What decides whether a substance [dissolves](https://one-course.com/books/chemistry/1/en/chapter/2-mixing-and-dissolving#def-g2-mixing-and-dissolving-dissolve) in a liquid? The answer lies in the [partial charges](https://one-course.com/books/chemistry/1/en/chapter/30-electronegativity-polarity-and-intermolecular-forces#def-g11-polarity-and-cohesion-polar-bond) and the forces between particles of the previous chapter.

**You already know.**

[Solubility](https://one-course.com/books/chemistry/1/en/chapter/9-solutions-and-solubility#def-g6-solutions-and-solubility-solubility); [miscible](https://one-course.com/books/chemistry/1/en/chapter/9-solutions-and-solubility#def-g6-solutions-and-solubility-miscible) and [immiscible](https://one-course.com/books/chemistry/1/en/chapter/9-solutions-and-solubility#def-g6-solutions-and-solubility-miscible) liquids ([Chapter 9](https://one-course.com/books/chemistry/1/en/chapter/9-solutions-and-solubility#ch-g6-solutions-and-solubility)). An [ionic compound](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ionic-compound) is made of [cations](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) and [anions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) in proportions that make it neutral ([Chapter 17](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#ch-g9-ions)). Polar and [non-polar molecules](https://one-course.com/books/chemistry/1/en/chapter/30-electronegativity-polarity-and-intermolecular-forces#def-g11-polarity-and-cohesion-polar-molecule), [hydrogen bonds](https://one-course.com/books/chemistry/1/en/chapter/30-electronegativity-polarity-and-intermolecular-forces#def-g11-polarity-and-cohesion-hydrogen-bond), [van der Waals interactions](https://one-course.com/books/chemistry/1/en/chapter/30-electronegativity-polarity-and-intermolecular-forces#def-g11-polarity-and-cohesion-van-der-waals) ([Chapter 30](https://one-course.com/books/chemistry/1/en/chapter/30-electronegativity-polarity-and-intermolecular-forces#ch-g11-polarity-and-cohesion)). [Liquid–liquid extraction](https://one-course.com/books/chemistry/1/en/chapter/22-chemical-species-natural-and-synthetic#def-g10-chemical-species-extraction) ([Chapter 22](https://one-course.com/books/chemistry/1/en/chapter/22-chemical-species-natural-and-synthetic#ch-g10-chemical-species)). [Molar concentration](https://one-course.com/books/chemistry/1/en/chapter/26-concentration-and-dilution#def-g10-concentration-and-dilution-molar-concentration) ([Chapter 26](https://one-course.com/books/chemistry/1/en/chapter/26-concentration-and-dilution#ch-g10-concentration-and-dilution)).

## 31.1 Dissolving an ionic solid

In a crystal of sodium chloride, each sodium [ion](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) $\ce{Na+}$ is surrounded by chloride [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) $\ce{Cl-}$ and each chloride [ion](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) by sodium [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion), all held by the attraction between opposite charges. Water [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule), polar, are attracted by these charges: their oxygen side ($\delta^-$) turns towards the [cations](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion), their hydrogen side ($\delta^+$) towards the [anions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion).

**Definition 31.1 (Dissociation).**

The *dissociation* of an ionic solid in a [solvent](https://one-course.com/books/chemistry/1/en/chapter/9-solutions-and-solubility#def-g6-solutions-and-solubility-solute) is the separation of its [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) from one another: they leave the crystal and move apart in the solution.

**Definition 31.2 (Solvation, hydration).**

The *solvation* of a dissolved particle is its surrounding by [solvent](https://one-course.com/books/chemistry/1/en/chapter/9-solutions-and-solubility#def-g6-solutions-and-solubility-solute) [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule), held to it by attractions; in water it is called *hydration*. The symbol (aq) after a formula means “hydrated”.

**Proposition 31.3 (Three stages of dissolving).**

An ionic solid [dissolves](https://one-course.com/books/chemistry/1/en/chapter/2-mixing-and-dissolving#def-g2-mixing-and-dissolving-dissolve) in water in three stages that happen together: the [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) are pulled out of the crystal ([dissociation](#def-g11-dissolution-dissociation)), surrounded by water [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) ([hydration](#def-g11-dissolution-solvation)), and spread through the whole solution (dispersion). For sodium chloride,

$$
\ce{NaCl(s) -> Na+(aq) + Cl-(aq)} .
$$

**Proof.** Admitted: the attractions between the [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) and the polar water [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule), added up, are strong enough to replace those between the [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) of the crystal. ∎

![Sodium chloride dissolving. A sodium ion and a chloride ion have left the crystal; each is hydrated. Around the cation the water molecules turn their oxygen atoms (red, -) inwards, around the anion their hydrogen atoms (white, +).](https://one-course.com/images/onecourse/chapters/chemistry-1/g11-dissolution/fig-b85c45804a70.svg)

*Sodium chloride dissolving. A sodium [ion](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) and a chloride [ion](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) have left the crystal; each is hydrated. Around the [cation](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) the water [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) turn their oxygen [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) (red, $\delta^-$) inwards, around the [anion](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) their hydrogen [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) (white, $\delta^+$).*

## 31.2 Concentrations of the ions

**Method 31.4 (Concentration of each ion).**

1. Write the dissolution equation, balanced in [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) and in charge: for calcium chloride, $\ce{CaCl2(s) -> Ca^{2+}(aq) + 2Cl-(aq)}$ .
2. Compute the amount $n$ of solid dissolved, and the concentration $c = n / V$ of the solution in [solute](https://one-course.com/books/chemistry/1/en/chapter/9-solutions-and-solubility#def-g6-solutions-and-solubility-solute) .
3. Each [ion](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) has the concentration $c$ multiplied by its coefficient in the equation: here $[\ce{Ca^{2+}}] = c$ and $[\ce{Cl-}] = 2c$ .

The square brackets $[\ldots]$ denote the [molar concentration](https://one-course.com/books/chemistry/1/en/chapter/26-concentration-and-dilution#def-g10-concentration-and-dilution-molar-concentration) of a dissolved species.

**Example 31.5 (Calcium chloride).**

$5.55\,\mathrm{g}$ of calcium chloride ($M = 111.1\,\mathrm{g}/\mathrm{mol}$) dissolved to make $500.0\,\mathrm{mL}$ of solution: $n = 0.0500\,\mathrm{mol}$, $c = 0.100\,\mathrm{mol}/\mathrm{L}$, so $[\ce{Ca^{2+}}] = 0.100\,\mathrm{mol}/\mathrm{L}$ and $[\ce{Cl-}] = 0.200\,\mathrm{mol}/\mathrm{L}$. The solution is neutral: $2 \times
0.100$ of positive charge per litre for $1 \times 0.200$ of negative.

## 31.3 Polarity and solubility

**Proposition 31.6 (Like dissolves like).**

A polar [solvent](https://one-course.com/books/chemistry/1/en/chapter/9-solutions-and-solubility#def-g6-solutions-and-solubility-solute), such as water, [dissolves](https://one-course.com/books/chemistry/1/en/chapter/2-mixing-and-dissolving#def-g2-mixing-and-dissolving-dissolve) ionic solids and polar species, especially those able to form [hydrogen bonds](https://one-course.com/books/chemistry/1/en/chapter/30-electronegativity-polarity-and-intermolecular-forces#def-g11-polarity-and-cohesion-hydrogen-bond) with it; a non-polar [solvent](https://one-course.com/books/chemistry/1/en/chapter/9-solutions-and-solubility#def-g6-solutions-and-solubility-solute), such as cyclohexane or a vegetable oil, [dissolves](https://one-course.com/books/chemistry/1/en/chapter/2-mixing-and-dissolving#def-g2-mixing-and-dissolving-dissolve) non-polar species. Ionic solids [dissolve](https://one-course.com/books/chemistry/1/en/chapter/2-mixing-and-dissolving#def-g2-mixing-and-dissolving-dissolve) very little in non-polar [solvents](https://one-course.com/books/chemistry/1/en/chapter/9-solutions-and-solubility#def-g6-solutions-and-solubility-solute), and non-polar species very little in water.

**Proof.** Admitted: a [solute](https://one-course.com/books/chemistry/1/en/chapter/9-solutions-and-solubility#def-g6-solutions-and-solubility-solute) [dissolves](https://one-course.com/books/chemistry/1/en/chapter/2-mixing-and-dissolving#def-g2-mixing-and-dissolving-dissolve) well when the attractions it can form with the [solvent](https://one-course.com/books/chemistry/1/en/chapter/9-solutions-and-solubility#def-g6-solutions-and-solubility-solute) are at least as strong as those it breaks, between its own particles and between the [solvent](https://one-course.com/books/chemistry/1/en/chapter/9-solutions-and-solubility#def-g6-solutions-and-solubility-solute) [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule). ∎

**Example 31.7 (Three cases).**

Ethanol [mixes](https://one-course.com/books/chemistry/1/en/chapter/2-mixing-and-dissolving#def-g2-mixing-and-dissolving-mix) with water in all proportions: its $\ce{O-H}$ group forms [hydrogen bonds](https://one-course.com/books/chemistry/1/en/chapter/30-electronegativity-polarity-and-intermolecular-forces#def-g11-polarity-and-cohesion-hydrogen-bond) with water. Salt [dissolves](https://one-course.com/books/chemistry/1/en/chapter/2-mixing-and-dissolving#def-g2-mixing-and-dissolving-dissolve) in water but not in oil. Iodine, $\ce{I2}$, a [non-polar molecule](https://one-course.com/books/chemistry/1/en/chapter/30-electronegativity-polarity-and-intermolecular-forces#def-g11-polarity-and-cohesion-polar-molecule), [dissolves](https://one-course.com/books/chemistry/1/en/chapter/2-mixing-and-dissolving#def-g2-mixing-and-dissolving-dissolve) poorly in water (about $0.3\,\mathrm{g}/\mathrm{L}$, a brown solution) but well in non-polar [solvents](https://one-course.com/books/chemistry/1/en/chapter/9-solutions-and-solubility#def-g6-solutions-and-solubility-solute) ($17\,\mathrm{g}$ per kilogram of heptane, a violet solution).

## 31.4 Liquid–liquid extraction, explained

A [liquid–liquid extraction](https://one-course.com/books/chemistry/1/en/chapter/22-chemical-species-natural-and-synthetic#def-g10-chemical-species-extraction) moves a species from one [solvent](https://one-course.com/books/chemistry/1/en/chapter/9-solutions-and-solubility#def-g6-solutions-and-solubility-solute) into another, [immiscible](https://one-course.com/books/chemistry/1/en/chapter/9-solutions-and-solubility#def-g6-solutions-and-solubility-miscible) with the first, in which it is more soluble. The rule “like [dissolves](https://one-course.com/books/chemistry/1/en/chapter/2-mixing-and-dissolving#def-g2-mixing-and-dissolving-dissolve) like” tells which [solvent](https://one-course.com/books/chemistry/1/en/chapter/9-solutions-and-solubility#def-g6-solutions-and-solubility-solute) to choose.

**In the lab — Extracting iodine.**

$20\,\mathrm{mL}$ of brown aqueous iodine solution are poured into a separating funnel with $10\,\mathrm{mL}$ of cyclohexane. The funnel is stoppered, shaken, its pressure released through the tap, and left to stand. Two layers form: cyclohexane, less dense, on top. The upper layer is now violet, the lower one almost colourless: the iodine has passed into the cyclohexane. The lower layer is run off through the tap, and the iodine is recovered in the cyclohexane.

![Extracting iodine from water with cyclohexane. Non-polar iodine moves into the non-polar solvent; cyclohexane, less dense than water, floats on top.](https://one-course.com/images/onecourse/chapters/chemistry-1/g11-dissolution/fig-b5b89a0209fe.svg)

*Extracting iodine from water with cyclohexane. Non-polar iodine moves into the non-polar [solvent](https://one-course.com/books/chemistry/1/en/chapter/9-solutions-and-solubility#def-g6-solutions-and-solubility-solute); cyclohexane, less dense than water, floats on top.*

**Safety.**

![](https://one-course.com/images/onecourse/chapters/chemistry-1/g11-dissolution/fig-1664a80a99b8.svg)

![](https://one-course.com/images/onecourse/chapters/chemistry-1/g11-dissolution/fig-0df833fa40ae.svg)

![](https://one-course.com/images/onecourse/chapters/chemistry-1/g11-dissolution/fig-37c19258c5e2.svg)

![](https://one-course.com/images/onecourse/chapters/chemistry-1/g11-dissolution/fig-259f91be137f.svg)

Cyclohexane is highly flammable, its vapour makes one drowsy, it is harmful to the lungs if swallowed and very toxic to aquatic life. Iodine is harmful by skin contact and if inhaled. Fume hood, goggles and gloves, no flame anywhere near; the organic waste is collected.

## 31.5 Soaps and amphiphilic molecules

**Definition 31.8 (Hydrophilic, hydrophobic).**

A species or a part of a [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) is *hydrophilic* if it is attracted by water (ionic or polar groups, groups that form [hydrogen bonds](https://one-course.com/books/chemistry/1/en/chapter/30-electronegativity-polarity-and-intermolecular-forces#def-g11-polarity-and-cohesion-hydrogen-bond)); it is *hydrophobic* if it is not (long chains of carbon and hydrogen [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom), non-polar). Hydrophobic species [dissolve](https://one-course.com/books/chemistry/1/en/chapter/2-mixing-and-dissolving#def-g2-mixing-and-dissolving-dissolve) in fats and oils.

**Definition 31.9 (Amphiphilic molecule, micelle).**

An *amphiphilic* [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) or [ion](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) has a [hydrophilic](#def-g11-dissolution-hydrophilic) head and a [hydrophobic](#def-g11-dissolution-hydrophilic) tail. In water, amphiphilic [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) gather into *micelles*: tiny spheres with the tails inside, out of the water, and the heads on the surface, in contact with it.

**Example 31.10 (A soap).**

Sodium stearate, $\ce{C17H35COONa}$ ($M = 306.0\,\mathrm{g}/\mathrm{mol}$), is a typical soap, made from animal or vegetable fats. In water it [dissolves](https://one-course.com/books/chemistry/1/en/chapter/2-mixing-and-dissolving#def-g2-mixing-and-dissolving-dissolve) as sodium [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) $\ce{Na+}$ and stearate [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) $\ce{C17H35COO-}$: a head $\ce{-COO-}$, ionic, [hydrophilic](#def-g11-dissolution-hydrophilic), and a tail of 17 carbon [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom), [hydrophobic](#def-g11-dissolution-hydrophilic).

![The stearate ion. In this zigzag drawing each corner of the chain is a carbon atom bearing hydrogen atoms (CH2, and CH3 at the far end); a later chapter explains the shorthand. Below, the usual sketch: a wavy tail and a round head.](https://one-course.com/images/onecourse/chapters/chemistry-1/g11-dissolution/fig-00a2e96d3b6e.svg)

*The stearate [ion](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion). In this zigzag drawing each corner of the chain is a carbon [atom](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) bearing hydrogen [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) ($\ce{CH2}$, and $\ce{CH3}$ at the far end); a later chapter explains the shorthand. Below, the usual sketch: a wavy tail and a round head.*

**Proposition 31.11 (How soap removes grease).**

Grease is [hydrophobic](#def-g11-dissolution-hydrophilic) and does not [dissolve](https://one-course.com/books/chemistry/1/en/chapter/2-mixing-and-dissolving#def-g2-mixing-and-dissolving-dissolve) in water. In soapy water, the tails of the soap [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) [dissolve](https://one-course.com/books/chemistry/1/en/chapter/2-mixing-and-dissolving#def-g2-mixing-and-dissolving-dissolve) in the grease while the heads stay in the water; the grease breaks into tiny droplets, each wrapped in a [micelle](#def-g11-dissolution-amphiphilic) whose charged surface faces the water, and the droplets are carried away by the rinsing water.

**Proof.** Admitted: it follows from “like [dissolves](https://one-course.com/books/chemistry/1/en/chapter/2-mixing-and-dissolving#def-g2-mixing-and-dissolving-dissolve) like” applied to each end of the [ion](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion); the charged heads on the outside also keep the droplets from merging again, since like charges repel. ∎

![A micelle in cross-section: soap ions around a droplet of grease, tails inwards, charged heads outwards. Each micelle is negatively charged on its surface, and micelles repel one another.](https://one-course.com/images/onecourse/chapters/chemistry-1/g11-dissolution/fig-e3583e333698.svg)

*A [micelle](#def-g11-dissolution-amphiphilic) in cross-section: soap [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) around a droplet of grease, tails inwards, charged heads outwards. Each [micelle](#def-g11-dissolution-amphiphilic) is negatively charged on its surface, and [micelles](#def-g11-dissolution-amphiphilic) repel one another.*

![Washing greasy hands: soap carries the grease off in micelles.](https://one-course.com/images/onecourse/chapters/chemistry-1/g11-dissolution/img-8298d339a439.jpg)

*Washing greasy hands: soap carries the grease off in [micelles](#def-g11-dissolution-amphiphilic).*

**Remark 31.12 (Hard water and scum).**

Hard water contains many calcium [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) $\ce{Ca^{2+}}$ and magnesium [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) $\ce{Mg^{2+}}$, dissolved from the rocks it has run through. With stearate [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) they form a [precipitate](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-precipitate) ([Chapter 17](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#ch-g9-ions)), calcium stearate:

$$
\ce{2C17H35COO- + Ca^{2+} -> Ca(C17H35COO)2(s)} .
$$

This greyish solid is the scum that rings a washbasin, and every soap [ion](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) caught in it is lost for washing: in hard water, soap lathers badly until enough has been added to [precipitate](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-precipitate) all the calcium.

![Soap scum in a basin: calcium stearate, precipitated by hard water.](https://one-course.com/images/onecourse/chapters/chemistry-1/g11-dissolution/img-668f726c3796.jpg)

*Soap scum in a basin: calcium stearate, precipitated by hard water.*

## 31.6 Exercises

**Exercise 31.1 ★.**

Write the dissolution equations in water of sodium chloride $\ce{NaCl}$, calcium chloride $\ce{CaCl2}$, sodium sulfate $\ce{Na2SO4}$ and aluminium chloride $\ce{AlCl3}$.

**Solution of Exercise 31.1.**

$\ce{NaCl(s) -> Na+(aq) + Cl-(aq)}$; $\ce{CaCl2(s) -> Ca^{2+}(aq) + 2Cl-(aq)}$; $\ce{Na2SO4(s) -> 2Na+(aq) + SO4^{2-}(aq)}$; $\ce{AlCl3(s) -> Al^{3+}(aq) + 3Cl-(aq)}$.

**Exercise 31.2 ★.**

A solution of sodium sulfate has $c = 0.050\,\mathrm{mol}/\mathrm{L}$. Give the concentrations of the sodium [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) and of the sulfate [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion).

**Solution of Exercise 31.2.**

$[\ce{Na+}] = 2 \times 0.050 = 0.10\,\mathrm{mol}/\mathrm{L}$; $[\ce{SO4^{2-}}] = 0.050\,\mathrm{mol}/\mathrm{L}$.

**Exercise 31.3 ★.**

What is meant by the [hydration](#def-g11-dissolution-solvation) of an [ion](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion)? Which end of a water [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) points towards a [cation](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion), which towards an [anion](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion)? Why?

**Solution of Exercise 31.3.**

[Hydration](#def-g11-dissolution-solvation) is the surrounding of the [ion](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) by water [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) held to it. The oxygen end ($\delta^-$) points towards a [cation](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion), the hydrogen end ($\delta^+$) towards an [anion](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion): opposite charges attract.

**Exercise 31.4 ★.**

$2.67\,\mathrm{g}$ of aluminium chloride are dissolved to make $200.0\,\mathrm{mL}$ of solution. Compute the concentration of the solution and of each [ion](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion).

**Solution of Exercise 31.4.**

$M(\ce{AlCl3}) = 27.0 + 3 \times 35.5 = 133.5\,\mathrm{g}/\mathrm{mol}$; $n = 2.67 / 133.5 = 0.0200\,\mathrm{mol}$; $c = 0.0200 / 0.2000 =
0.100\,\mathrm{mol}/\mathrm{L}$; $[\ce{Al^{3+}}] = 0.100\,\mathrm{mol}/\mathrm{L}$, $[\ce{Cl-}] = 0.300\,\mathrm{mol}/\mathrm{L}$.

**Exercise 31.5 ★.**

Label each part of the stearate [ion](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) as [hydrophilic](#def-g11-dissolution-hydrophilic) or [hydrophobic](#def-g11-dissolution-hydrophilic), and say why.

**Solution of Exercise 31.5.**

The head $\ce{-COO-}$ is ionic, attracted by water: [hydrophilic](#def-g11-dissolution-hydrophilic). The tail of 17 carbon [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom), with only $\ce{C-C}$ and nearly non-polar $\ce{C-H}$ bonds, is non-polar: [hydrophobic](#def-g11-dissolution-hydrophilic).

**Exercise 31.6 ★★.**

Which [solvent](https://one-course.com/books/chemistry/1/en/chapter/9-solutions-and-solubility#def-g6-solutions-and-solubility-solute), water or cyclohexane, would you choose to [dissolve](https://one-course.com/books/chemistry/1/en/chapter/2-mixing-and-dissolving#def-g2-mixing-and-dissolving-dissolve): salt; candle wax (long hydrocarbon chains); sugar (many $\ce{O-H}$ groups); iodine? Justify each choice.

**Solution of Exercise 31.6.**

Salt: water (ionic solid, polar [solvent](https://one-course.com/books/chemistry/1/en/chapter/9-solutions-and-solubility#def-g6-solutions-and-solubility-solute)). Wax: cyclohexane (non-polar chains). Sugar: water (its $\ce{O-H}$ groups form [hydrogen bonds](https://one-course.com/books/chemistry/1/en/chapter/30-electronegativity-polarity-and-intermolecular-forces#def-g11-polarity-and-cohesion-hydrogen-bond) with water). Iodine: cyclohexane ([non-polar molecule](https://one-course.com/books/chemistry/1/en/chapter/30-electronegativity-polarity-and-intermolecular-forces#def-g11-polarity-and-cohesion-polar-molecule)).

**Exercise 31.7 ★★.**

Ethanol $\ce{CH3-CH2-OH}$ [mixes](https://one-course.com/books/chemistry/1/en/chapter/2-mixing-and-dissolving#def-g2-mixing-and-dissolving-mix) with water in all proportions, but hexane $\ce{C6H14}$ does not [mix](https://one-course.com/books/chemistry/1/en/chapter/2-mixing-and-dissolving#def-g2-mixing-and-dissolving-mix) with water. Explain.

**Solution of Exercise 31.7.**

The $\ce{O-H}$ group of ethanol forms [hydrogen bonds](https://one-course.com/books/chemistry/1/en/chapter/30-electronegativity-polarity-and-intermolecular-forces#def-g11-polarity-and-cohesion-hydrogen-bond) with water [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule), which replace those it breaks: ethanol fits into water. Hexane, non-polar, can form no such bonds; the water [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule), held to one another by [hydrogen bonds](https://one-course.com/books/chemistry/1/en/chapter/30-electronegativity-polarity-and-intermolecular-forces#def-g11-polarity-and-cohesion-hydrogen-bond), do not let it in.

**Exercise 31.8 ★★.**

Look at the [micelle](#def-g11-dissolution-amphiphilic) figure. Why are the tails inside and the heads outside? Why do two [micelles](#def-g11-dissolution-amphiphilic) not merge into one larger drop of grease?

**Solution of Exercise 31.8.**

The [hydrophobic](#def-g11-dissolution-hydrophilic) tails avoid the water and [dissolve](https://one-course.com/books/chemistry/1/en/chapter/2-mixing-and-dissolving#def-g2-mixing-and-dissolving-dissolve) in the grease, at the centre; the charged heads are attracted by water and stay outside. All the [micelles](#def-g11-dissolution-amphiphilic) carry negative charges on their surfaces, and like charges repel: they stay apart.

**Exercise 31.9 ★★.**

A plant scent is dissolved in water. To extract it, a chemist can use ethanol or cyclohexane. Which one is suitable, and why is the other not (think of [miscibility](https://one-course.com/books/chemistry/1/en/chapter/9-solutions-and-solubility#def-g6-solutions-and-solubility-miscible))?

**Solution of Exercise 31.9.**

Cyclohexane: it is [immiscible](https://one-course.com/books/chemistry/1/en/chapter/9-solutions-and-solubility#def-g6-solutions-and-solubility-miscible) with water, so it forms a separate layer that can be run off, and the scent (non-polar) [dissolves](https://one-course.com/books/chemistry/1/en/chapter/2-mixing-and-dissolving#def-g2-mixing-and-dissolving-dissolve) well in it. Ethanol is [miscible](https://one-course.com/books/chemistry/1/en/chapter/9-solutions-and-solubility#def-g6-solutions-and-solubility-miscible) with water: no second layer forms, and nothing can be separated.

**Exercise 31.10 ★★.**

In the iodine [extraction](https://one-course.com/books/chemistry/1/en/chapter/22-chemical-species-natural-and-synthetic#def-g10-chemical-species-extraction), why is the cyclohexane layer on top? Which layer is run off through the tap? Where is the iodine at the end?

**Solution of Exercise 31.10.**

Cyclohexane is less dense than water. The lower, aqueous layer is run off through the tap. The iodine is in the upper cyclohexane layer, which stays in the funnel.

**Exercise 31.11 ★★.**

A blue solution of copper sulfate is shaken with cyclohexane. What happens to the blue colour? Explain.

**Solution of Exercise 31.11.**

Nothing: copper sulfate is ionic and does not [dissolve](https://one-course.com/books/chemistry/1/en/chapter/2-mixing-and-dissolving#def-g2-mixing-and-dissolving-dissolve) in non-polar cyclohexane. The water stays blue and the cyclohexane colourless.

**Exercise 31.12 ★★★.**

What mass of calcium chloride must be dissolved to make $250.0\,\mathrm{mL}$ of a solution in which $[\ce{Cl-}] = 0.300\,\mathrm{mol}/\mathrm{L}$?

**Solution of Exercise 31.12.**

$[\ce{Cl-}] = 2c$, so $c = 0.150\,\mathrm{mol}/\mathrm{L}$; $n = 0.150 \times 0.2500 = 0.0375\,\mathrm{mol}$; $m = 0.0375 \times 111.1 = 4.17\,\mathrm{g}$.

**Exercise 31.13 ★★★.**

A sample of sea water is found to contain $0.010\,\mathrm{mol}/\mathrm{L}$ of calcium [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) and $0.053\,\mathrm{mol}/\mathrm{L}$ of magnesium [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion). Explain why ordinary soap lathers very badly in sea water. How much sodium stearate would be precipitated by the calcium [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) alone of one litre of sea water?

**Solution of Exercise 31.13.**

The calcium and magnesium [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) [precipitate](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-precipitate) the stearate [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) as scum: the soap is used up before it can form [micelles](#def-g11-dissolution-amphiphilic), and lathers badly. Calcium alone: $0.010\,\mathrm{mol}$ of $\ce{Ca^{2+}}$ takes $0.020\,\mathrm{mol}$ of stearate, that is $0.020 \times 306.0 =
6.1\,\mathrm{g}$ of sodium stearate per litre.

**Exercise 31.14 ★★★.**

$100.0\,\mathrm{mL}$ of sodium chloride solution at $0.20\,\mathrm{mol}/\mathrm{L}$ are mixed with $100.0\,\mathrm{mL}$ of calcium chloride solution at $0.10\,\mathrm{mol}/\mathrm{L}$. No [precipitate](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-precipitate) forms. Compute the concentrations of $\ce{Na+}$, $\ce{Ca^{2+}}$ and $\ce{Cl-}$ in the [mixture](https://one-course.com/books/chemistry/1/en/chapter/8-pure-substances-and-mixtures#def-g6-pure-substances-and-mixtures-mixture), and check that it is neutral.

**Solution of Exercise 31.14.**

Volume $0.2000\,\mathrm{L}$. $\ce{Na+}$: $0.020 / 0.2000 = 0.10\,\mathrm{mol}/\mathrm{L}$; $\ce{Ca^{2+}}$: $0.010 / 0.2000 = 0.050\,\mathrm{mol}/\mathrm{L}$; $\ce{Cl-}$: $(0.020 + 0.020) / 0.2000 = 0.20\,\mathrm{mol}/\mathrm{L}$. Positive charge: $0.10 + 2 \times 0.050 = 0.20$; negative: $0.20$. Neutral.

**Exercise 31.15 ★★★.**

Iodine [dissolves](https://one-course.com/books/chemistry/1/en/chapter/2-mixing-and-dissolving#def-g2-mixing-and-dissolving-dissolve) at about $0.3\,\mathrm{g}$ per litre of water and $17\,\mathrm{g}$ per kilogram of heptane. Heptane has a density of about $0.68\,\mathrm{kg}/\mathrm{L}$. How many times more iodine can a litre of heptane hold than a litre of water? What does this mean for an [extraction](https://one-course.com/books/chemistry/1/en/chapter/22-chemical-species-natural-and-synthetic#def-g10-chemical-species-extraction)?

**Solution of Exercise 31.15.**

A litre of heptane has a mass of $0.68\,\mathrm{kg}$ and can hold $17 \times 0.68 = 12\,\mathrm{g}$ of iodine, about 40 times more than a litre of water. Shaken together, nearly all the iodine passes into the heptane: the [extraction](https://one-course.com/books/chemistry/1/en/chapter/22-chemical-species-natural-and-synthetic#def-g10-chemical-species-extraction) is efficient.

## 31.7 Problem: Soap and Hard Water

**Problem 31.1.**

Weekend problem — how much soap does a bath of hard water waste as scum?

A tap water contains $120\,\mathrm{mg}$ of calcium [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) and $24\,\mathrm{mg}$ of magnesium [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) per litre. A bath is filled with $150\,\mathrm{L}$ of it, and the bather uses a soap made of sodium stearate, $\ce{C17H35COONa}$.

**Part I — What is in the water.**

1. Where do the calcium and magnesium [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) of tap water come from?
2. Compute the [molar concentrations](https://one-course.com/books/chemistry/1/en/chapter/26-concentration-and-dilution#def-g10-concentration-and-dilution-molar-concentration) of the calcium [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) and of the magnesium [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) .
3. The calcium [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) are accompanied by hydrogencarbonate [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) , $\ce{HCO3-}$ , as if calcium hydrogencarbonate $\ce{Ca(HCO3)2}$ had been dissolved. Write that dissolution equation, and deduce the concentration of hydrogencarbonate [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) that goes with the calcium.
4. What amount of calcium [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) does the bath contain?

**Part II — The soap.**

5. Compute the [molar mass](https://one-course.com/books/chemistry/1/en/chapter/25-the-mole-and-molar-mass#def-g10-the-mole-molar-mass) of sodium stearate.
6. Write its dissolution equation in water.
7. Which part of the stearate [ion](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) is [hydrophilic](#def-g11-dissolution-hydrophilic) , which [hydrophobic](#def-g11-dissolution-hydrophilic) ? Why is it called [amphiphilic](#def-g11-dissolution-amphiphilic) ?
8. Describe a [micelle](#def-g11-dissolution-amphiphilic) , and explain how it removes grease from the skin.
9. Why must soap be dissolved in water, not in oil, to wash?

**Part III — Scum.**

10. Write the equation of the [precipitation](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-precipitate) of calcium stearate. Check that it is balanced in charge.
11. Fill the [progress table](https://one-course.com/books/chemistry/1/en/chapter/27-the-reaction-progress-table#def-g10-reaction-progress-table-extent) for $1.00\,\mathrm{L}$ of the tap water and an excess of stearate [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) . Which [reactant](https://one-course.com/books/chemistry/1/en/chapter/12-chemical-reactions-reactants-and-products#def-g7-chemical-reactions-reactant) is limiting?
12. What amount of stearate [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) is lost per litre to the calcium?
13. Compute the [molar mass](https://one-course.com/books/chemistry/1/en/chapter/25-the-mole-and-molar-mass#def-g10-the-mole-molar-mass) of calcium stearate, and the mass of scum formed per litre.
14. Magnesium stearate [precipitates](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-precipitate) in the same way. What amount of stearate do the magnesium [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) take per litre?

**Part IV — The bath.**

15. What amount of stearate [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) does the calcium of the whole bath [precipitate](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-precipitate) ?
16. What mass of soap is that?
17. Adding the magnesium, what mass of soap is wasted in all?
18. Bars of soap weigh about $100\,\mathrm{g}$ . How many bars does the calcium alone take?
19. State the final answer: what mass of soap does the calcium of one $150\,\mathrm{L}$ bath of this water waste as scum?

**Solution of Problem 31.1.**

**1.** From the rocks the water has run through (limestone, dolomite, gypsum), which [dissolve](https://one-course.com/books/chemistry/1/en/chapter/2-mixing-and-dissolving#def-g2-mixing-and-dissolving-dissolve) a little.

**2.** $[\ce{Ca^{2+}}] = 0.120 / 40.1 = 2.99 \times 10^{-3}\,\mathrm{mol}/\mathrm{L}$; $[\ce{Mg^{2+}}] = 0.024 / 24.3 = 9.9 \times 10^{-4}\,\mathrm{mol}/\mathrm{L}$.

**3.** $\ce{Ca(HCO3)2 -> Ca^{2+}(aq) + 2HCO3-(aq)}$; so $[\ce{HCO3-}] = 2 \times 2.99 \times 10^{-3} = 5.99 \times 10^{-3}\,\mathrm{mol}/\mathrm{L}$.

**4.** $2.99 \times 10^{-3} \times 150 = 0.449\,\mathrm{mol}$.

**5.** $18 \times 12.0 + 35 \times 1.0 + 2 \times 16.0 + 23.0 =
306.0\,\mathrm{g}/\mathrm{mol}$.

**6.** $\ce{C17H35COONa(s) -> C17H35COO-(aq) + Na+(aq)}$.

**7.** Head $\ce{-COO-}$: [hydrophilic](#def-g11-dissolution-hydrophilic); tail $\ce{C17H35-}$: [hydrophobic](#def-g11-dissolution-hydrophilic). It has both kinds of part: [amphiphilic](#def-g11-dissolution-amphiphilic).

**8.** A tiny sphere of soap [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion), tails inwards, heads outwards. The tails [dissolve](https://one-course.com/books/chemistry/1/en/chapter/2-mixing-and-dissolving#def-g2-mixing-and-dissolving-dissolve) in the grease, which is broken into droplets wrapped in [micelles](#def-g11-dissolution-amphiphilic); the charged surfaces keep the droplets apart in the water, which rinses them away.

**9.** The soap must form [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) and [micelles](#def-g11-dissolution-amphiphilic), which needs water around the heads; and the grease is carried off by the rinsing water. In oil the grease would simply stay dissolved on the skin.

**10.** $\ce{2C17H35COO- + Ca^{2+} -> Ca(C17H35COO)2}$: charges $2 \times (-1) + 2 = 0$ on the left, $0$ on the right.

**11.** $\ce{C17H35COO-}$: excess $- 2x$; $\ce{Ca^{2+}}$: $2.99 \times 10^{-3} - x$; calcium stearate: $x$. The calcium [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) are limiting: $x_{\max} = 2.99 \times 10^{-3}\,\mathrm{mol}$.

**12.** $2 \times 2.99 \times 10^{-3} = 5.99 \times 10^{-3}\,\mathrm{mol}$ per litre.

**13.** $M = 36 \times 12.0 + 70 \times 1.0 + 4 \times 16.0 + 40.1 =
606.1\,\mathrm{g}/\mathrm{mol}$; $2.99 \times 10^{-3} \times 606.1 = 1.81\,\mathrm{g}$ of scum per litre.

**14.** $2 \times 9.9 \times 10^{-4} = 1.98 \times 10^{-3}\,\mathrm{mol}$ per litre.

**15.** $2 \times 0.449 = 0.898\,\mathrm{mol}$.

**16.** $0.898 \times 306.0 = 275\,\mathrm{g}$.

**17.** Magnesium: $9.9 \times 10^{-4} \times 150 = 0.148\,\mathrm{mol}$, which takes $0.296\,\mathrm{mol}$ of stearate, $91\,\mathrm{g}$ of soap; in all about $275 + 91 = 366\,\mathrm{g}$.

**18.** $275 / 100 \approx 2.7$ bars.

**19.** The calcium of one bath wastes about $0.27\,\mathrm{kg}$ of soap as scum.
