---
title: "Electronegativity, Polarity and Intermolecular Forces"
book: "School Chemistry — Grades 1 to 12"
subject: chemistry
language: en
chapter: 30
exercises: 15
source: https://one-course.com/books/chemistry/1/en/chapter/30-electronegativity-polarity-and-intermolecular-forces
license: CC-BY-NC-SA-4.0
credit: "One Chemistry Book, One Course (one-course.com)"
---

# Chapter 30 — Electronegativity, Polarity and Intermolecular Forces

A gecko runs up a window pane and hangs from the glass by a single toe, with no glue and no suction cup. A water [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule), $\ce{H2O}$, is lighter than a [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) of hydrogen sulfide, $\ce{H2S}$, yet water boils at $100\,{}^{\circ}\mathrm{C}$ while hydrogen sulfide is a gas down to $-60\,{}^{\circ}\mathrm{C}$. Both stories are about the same thing: the forces that hold [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) to one another, and to other things. They are far weaker than the [covalent bonds](https://one-course.com/books/chemistry/1/en/chapter/24-lewis-structures-and-the-shape-of-molecules#def-g10-lewis-and-shape-covalent-bond) inside a [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule), but they decide whether a substance is a gas, a liquid or a solid at room temperature, and whether a gecko falls.

**You already know.**

A [covalent bond](https://one-course.com/books/chemistry/1/en/chapter/24-lewis-structures-and-the-shape-of-molecules#def-g10-lewis-and-shape-covalent-bond) is a pair of [electrons](https://one-course.com/books/chemistry/1/en/chapter/16-inside-the-atom#def-g9-inside-the-atom-nucleus) shared by two [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom); [Lewis structures](https://one-course.com/books/chemistry/1/en/chapter/24-lewis-structures-and-the-shape-of-molecules#def-g10-lewis-and-shape-lewis-structure) show [bonding pairs](https://one-course.com/books/chemistry/1/en/chapter/24-lewis-structures-and-the-shape-of-molecules#def-g10-lewis-and-shape-lone-pair) and [lone pairs](https://one-course.com/books/chemistry/1/en/chapter/24-lewis-structures-and-the-shape-of-molecules#def-g10-lewis-and-shape-lone-pair), and the pairs around a central [atom](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) decide the shape of a [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) ([Chapter 24](https://one-course.com/books/chemistry/1/en/chapter/24-lewis-structures-and-the-shape-of-molecules#ch-g10-lewis-and-shape)). [Ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) carry a charge; in an ionic solid, positive and negative [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) attract one another ([Chapter 17](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#ch-g9-ions)).

![A gecko on a glass pane: its toe pads hold by forces between molecules.](https://one-course.com/images/onecourse/chapters/chemistry-1/g11-polarity-and-cohesion/img-c4c9bd5535ae.jpg)

*A gecko on a glass pane: its toe pads hold by forces between [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule).*

## 30.1 Electronegativity

**Definition 30.1 (Electronegativity).**

The *electronegativity* of an element measures how strongly its [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom), in a [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule), attract the [electrons](https://one-course.com/books/chemistry/1/en/chapter/16-inside-the-atom#def-g9-inside-the-atom-nucleus) of the bonds they share. It is a number without unit; on the usual scale it runs from about 0.8 to about 4.

![Electronegativities of the first twenty elements (Pauling scale; none is given for helium, neon and argon, which form no bonds here). Highlighted: the four most electronegative.](https://one-course.com/images/onecourse/chapters/chemistry-1/g11-polarity-and-cohesion/fig-86597e0fef60.svg)

*Electronegativities of the first twenty elements (Pauling scale; none is given for helium, neon and argon, which form no bonds here). Highlighted: the four most electronegative.*

**Proposition 30.2 (Trends in the table).**

[Electronegativity](#def-g11-polarity-and-cohesion-electronegativity) increases from left to right along a period and decreases from top to bottom in a group. Fluorine (3.98) is the most electronegative element; the [alkali metals](https://one-course.com/books/chemistry/1/en/chapter/23-electron-shells-and-the-periodic-table#def-g10-electron-shells-family) are the least (lithium 0.98, potassium 0.82).

**Proof.** Read on the table: along period 2, $0.98 < 1.57 < 2.04 < 2.55 < 3.04 <
3.44 < 3.98$; down [group](https://one-course.com/books/chemistry/1/en/chapter/20-the-periodic-table-a-first-look#def-g9-periodic-table-first-look-period) 17, fluorine $3.98$ is above chlorine $3.16$; down [group](https://one-course.com/books/chemistry/1/en/chapter/20-the-periodic-table-a-first-look#def-g9-periodic-table-first-look-period) 1, $2.20$, $0.98$, $0.93$, $0.82$. (Why it is so is explained in the Year 1 volume.) ∎

**History — Pauling’s scale, 1932.**

The chemist Linus Pauling built the first [electronegativity](#def-g11-polarity-and-cohesion-electronegativity) scale in 1932, from the energies of bonds between different [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom). He gave fluorine the largest value, and the scale used in this chapter is still called after him.

## 30.2 Polar bonds and polar molecules

**Definition 30.3 (Polar bond, partial charge).**

A [covalent bond](https://one-course.com/books/chemistry/1/en/chapter/24-lewis-structures-and-the-shape-of-molecules#def-g10-lewis-and-shape-covalent-bond) between two [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) of different electronegativities is a *polar bond*: the shared pair sits closer to the more electronegative [atom](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom). That [atom](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) carries a small negative *partial charge*, written $\delta^-$, and the other [atom](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) an equal positive partial charge, $\delta^+$.

**Proposition 30.4 (When is a bond polar?).**

A bond between two identical [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) is not polar. Between different [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom), the larger the difference of electronegativities, the more polar the bond; as a rule of thumb, a difference below about 0.4 (such as $\ce{C-H}$, $2.55 - 2.20 = 0.35$) is treated as non-polar. When the difference is very large (such as Na and Cl, $3.16 - 0.93 = 2.23$), the [electrons](https://one-course.com/books/chemistry/1/en/chapter/16-inside-the-atom#def-g9-inside-the-atom-nucleus) are not shared but transferred: the compound is ionic.

**Proof.** Admitted: it follows from the definition of [electronegativity](#def-g11-polarity-and-cohesion-electronegativity), the thresholds being conventions. ∎

**Definition 30.5 (Polar and non-polar molecules).**

A [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) is a *polar molecule* if the centre of its positive [partial charges](#def-g11-polarity-and-cohesion-polar-bond) and the centre of its negative [partial charges](#def-g11-polarity-and-cohesion-polar-bond) do not coincide; if they coincide, it is a *non-polar molecule*.

**Method 30.6 (Is a molecule polar?).**

1. Draw the [Lewis structure](https://one-course.com/books/chemistry/1/en/chapter/24-lewis-structures-and-the-shape-of-molecules#def-g10-lewis-and-shape-lewis-structure) and find the shape of the [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) .
2. Mark the [polar bonds](#def-g11-polarity-and-cohesion-polar-bond) with $\delta^+$ and $\delta^-$ .
3. If there is no [polar bond](#def-g11-polarity-and-cohesion-polar-bond) , the [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) is non-polar. Otherwise, look at the shape: if the [polar bonds](#def-g11-polarity-and-cohesion-polar-bond) are arranged symmetrically around the centre, their effects cancel and the [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) is non-polar; if not, it is polar.

![In water, the bent shape puts the centre of the positive partial charges (between the hydrogen atoms) below the oxygen atom: the molecule is polar. In carbon dioxide the two polar bonds pull in opposite directions (arrows) and cancel: the centres of charge coincide on the carbon atom.](https://one-course.com/images/onecourse/chapters/chemistry-1/g11-polarity-and-cohesion/fig-78ae5a6e4439.svg)

*In water, the bent shape puts the centre of the positive [partial charges](#def-g11-polarity-and-cohesion-polar-bond) (between the hydrogen [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom)) below the oxygen [atom](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom): the [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) is polar. In carbon dioxide the two [polar bonds](#def-g11-polarity-and-cohesion-polar-bond) pull in opposite directions (arrows) and cancel: the centres of charge coincide on the carbon [atom](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom).*

**Example 30.7 (Four molecules).**

Hydrogen chloride $\ce{HCl}$ has one [polar bond](#def-g11-polarity-and-cohesion-polar-bond) and is polar, chlorine $\delta^-$. Ammonia $\ce{NH3}$, a pyramid of three polar $\ce{N-H}$ bonds, is polar, nitrogen $\delta^-$. Methane $\ce{CH4}$ has only nearly non-polar $\ce{C-H}$ bonds: non-polar. Tetrachloromethane $\ce{CCl4}$ has four polar $\ce{C-Cl}$ bonds, but at the corners of a regular tetrahedron: their effects cancel and the [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) is non-polar.

## 30.3 Van der Waals interactions

**Definition 30.8 (Van der Waals interaction).**

A *van der Waals interaction* is a weak attraction between neighbouring [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule), which exists between all [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule), polar or not: the [electrons](https://one-course.com/books/chemistry/1/en/chapter/16-inside-the-atom#def-g9-inside-the-atom-nucleus) of each [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) are constantly moving, and the momentary uneven charges of one [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) attract those of its neighbours. Between [polar molecules](#def-g11-polarity-and-cohesion-polar-molecule), the permanent [partial charges](#def-g11-polarity-and-cohesion-polar-bond) add a further attraction.

**Proposition 30.9 (Bigger molecules attract more).**

[Van der Waals interactions](#def-g11-polarity-and-cohesion-van-der-waals) grow with the size of the [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule), that is, with the number of their [electrons](https://one-course.com/books/chemistry/1/en/chapter/16-inside-the-atom#def-g9-inside-the-atom-nucleus); between similar [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule), the larger ones have the higher melting and boiling temperatures.

**Proof.** Admitted: a larger [electron](https://one-course.com/books/chemistry/1/en/chapter/16-inside-the-atom#def-g9-inside-the-atom-nucleus) cloud is more easily deformed, so its momentary charges are larger, and it has more contact with its neighbours. ∎

**Example 30.10 (The halogens).**

The [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) $\ce{F2}$, $\ce{Cl2}$, $\ce{Br2}$, $\ce{I2}$ are all non-polar and larger and larger. Their boiling temperatures rise with them: $-188\,{}^{\circ}\mathrm{C}$, $-34\,{}^{\circ}\mathrm{C}$, $59\,{}^{\circ}\mathrm{C}$ and $184\,{}^{\circ}\mathrm{C}$. At room temperature, fluorine and chlorine are gases, bromine a liquid, iodine a solid.

**Remark 30.11 (The gecko).**

A single [van der Waals interaction](#def-g11-polarity-and-cohesion-van-der-waals) is tiny, but they add up. The toe pads of a gecko are covered with a dense carpet of microscopic hairs, each split into still finer tips, which come close enough to the glass for [van der Waals interactions](#def-g11-polarity-and-cohesion-van-der-waals) to act over a very large total area.

## 30.4 Hydrogen bonds

**Definition 30.12 (Hydrogen bond).**

A *hydrogen bond* is an attraction between a hydrogen [atom](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) bonded to a very electronegative [atom](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) (nitrogen, oxygen or fluorine), which carries a marked $\delta^+$, and a [lone pair](https://one-course.com/books/chemistry/1/en/chapter/24-lewis-structures-and-the-shape-of-molecules#def-g10-lewis-and-shape-lone-pair) of another nitrogen, oxygen or fluorine [atom](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom), often on a neighbouring [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule). It is drawn as a dashed line, and the three [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) involved are nearly in a straight line.

![Hydrogen bonds (dashed) around a water molecule in liquid water: its two hydrogen atoms bond to the oxygen atoms of two neighbours, and the two lone pairs of its oxygen atom receive the hydrogen atoms of two others.](https://one-course.com/images/onecourse/chapters/chemistry-1/g11-polarity-and-cohesion/fig-4061f37c4b30.svg)

*[Hydrogen bonds](#def-g11-polarity-and-cohesion-hydrogen-bond) (dashed) around a water [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) in liquid water: its two hydrogen [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) bond to the oxygen [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) of two neighbours, and the two [lone pairs](https://one-course.com/books/chemistry/1/en/chapter/24-lewis-structures-and-the-shape-of-molecules#def-g10-lewis-and-shape-lone-pair) of its oxygen [atom](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) receive the hydrogen [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) of two others.*

**Example 30.13 (Ethanol and propane).**

Ethanol, $\ce{CH3-CH2-OH}$ ($46.0\,\mathrm{g}/\mathrm{mol}$), and propane, $\ce{CH3-CH2-CH3}$ ($44.0\,\mathrm{g}/\mathrm{mol}$), have [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) of nearly the same size. Yet ethanol boils at $78\,{}^{\circ}\mathrm{C}$ and propane at $-42\,{}^{\circ}\mathrm{C}$. Ethanol [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule), with their $\ce{O-H}$ group, form [hydrogen bonds](#def-g11-polarity-and-cohesion-hydrogen-bond) with one another; propane [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) cannot.

## 30.5 The cohesion of solids and liquids

**Definition 30.14 (Molecular solid).**

A *molecular solid* is a solid made of [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 [van der Waals interactions](#def-g11-polarity-and-cohesion-van-der-waals) and, where possible, [hydrogen bonds](#def-g11-polarity-and-cohesion-hydrogen-bond). Ice, solid iodine and sugar are molecular solids.

**Proposition 30.15 (Cohesion and change of state).**

The stronger the attractions between the particles of a substance, the higher its melting and boiling temperatures. In increasing order of strength: [van der Waals interactions](#def-g11-polarity-and-cohesion-van-der-waals), [hydrogen bonds](#def-g11-polarity-and-cohesion-hydrogen-bond), and the attraction between the [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion) of an ionic solid.

**Proof.** Admitted: melting and boiling pull particles apart against these attractions, which needs more energy, so a higher temperature, when they are stronger. ∎

**Example 30.16 (Three solids).**

Sodium chloride, an ionic solid, melts at $801\,{}^{\circ}\mathrm{C}$; ice, held by [hydrogen bonds](#def-g11-polarity-and-cohesion-hydrogen-bond), at $0\,{}^{\circ}\mathrm{C}$; solid methane, held only by [van der Waals interactions](#def-g11-polarity-and-cohesion-van-der-waals) between small [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule), far below $-150\,{}^{\circ}\mathrm{C}$.

![Boiling temperatures of the compounds of hydrogen with the elements of groups 14 to 17. In each group they rise with the size of the molecule, except for the first member of groups 15, 16 and 17, far too high: ammonia, water and hydrogen fluoride form hydrogen bonds. (No value is plotted where the sources used give none.)](https://one-course.com/images/onecourse/chapters/chemistry-1/g11-polarity-and-cohesion/fig-44794dc8aeb2.svg)

*Boiling temperatures of the compounds of hydrogen with the elements of [groups](https://one-course.com/books/chemistry/1/en/chapter/20-the-periodic-table-a-first-look#def-g9-periodic-table-first-look-period) 14 to 17. In each group they rise with the size of the [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule), except for the first member of [groups](https://one-course.com/books/chemistry/1/en/chapter/20-the-periodic-table-a-first-look#def-g9-periodic-table-first-look-period) 15, 16 and 17, far too high: ammonia, water and hydrogen fluoride form [hydrogen bonds](#def-g11-polarity-and-cohesion-hydrogen-bond). (No value is plotted where the sources used give none.)*

**Remark 30.17 (Ice and snow).**

In ice, every water [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) is hydrogen-bonded to four neighbours, in an open network of hexagonal rings. That network leaves more empty space than liquid water, where the bonds constantly break and re-form: ice is less dense than water and floats. The six-fold symmetry of snow crystals reflects the hexagonal rings of the network.

![Snow crystals photographed by Wilson Bentley in the early 1900s: every one has six branches.](https://one-course.com/images/onecourse/chapters/chemistry-1/g11-polarity-and-cohesion/img-b8cc6167f97d.jpg)

*Snow crystals photographed by Wilson Bentley in the early 1900s: every one has six branches.*

## 30.6 Exercises

**Exercise 30.1 ★.**

In the bonds $\ce{H-Cl}$, $\ce{O-H}$ and $\ce{C-O}$, which [atom](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) carries the [partial charge](#def-g11-polarity-and-cohesion-polar-bond) $\delta^-$? Use the table of electronegativities.

**Solution of Exercise 30.1.**

$\ce{H-Cl}$: chlorine (3.16 against 2.20). $\ce{O-H}$: oxygen (3.44). $\ce{C-O}$: oxygen (3.44 against 2.55).

**Exercise 30.2 ★.**

Which of these bonds are polar: $\ce{H-H}$, $\ce{C-H}$, $\ce{O-H}$, $\ce{N-H}$, $\ce{Cl-Cl}$, $\ce{C-Cl}$? Give the difference of electronegativities for each.

**Solution of Exercise 30.2.**

$\ce{H-H}$: 0, not polar. $\ce{C-H}$: 0.35, treated as non-polar. $\ce{O-H}$: 1.24, polar. $\ce{N-H}$: 0.84, polar. $\ce{Cl-Cl}$: 0, not polar. $\ce{C-Cl}$: 0.61, polar.

**Exercise 30.3 ★.**

Which element is the more electronegative in each pair: nitrogen or phosphorus; oxygen or sulfur; carbon or nitrogen; sodium or magnesium? Which trend of the table does each pair illustrate?

**Solution of Exercise 30.3.**

Nitrogen (3.04 > 2.19) and oxygen (3.44 > 2.58): [electronegativity](#def-g11-polarity-and-cohesion-electronegativity) decreases down a group. Nitrogen (3.04 > 2.55) and magnesium (1.31 > 0.93): it increases from left to right along a period.

**Exercise 30.4 ★.**

Which of $\ce{CH4}$, $\ce{NH3}$, $\ce{H2O}$ and $\ce{HCl}$ can form [hydrogen bonds](#def-g11-polarity-and-cohesion-hydrogen-bond) between their own [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule)? Explain.

**Solution of Exercise 30.4.**

Ammonia and water: each has hydrogen [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) bonded to nitrogen or oxygen, and [lone pairs](https://one-course.com/books/chemistry/1/en/chapter/24-lewis-structures-and-the-shape-of-molecules#def-g10-lewis-and-shape-lone-pair) on that [atom](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom). Methane has no hydrogen on N, O or F; hydrogen chloride has hydrogen bonded to chlorine, which is not one of the three [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) of the definition.

**Exercise 30.5 ★.**

Are there any attractions between the [non-polar molecules](#def-g11-polarity-and-cohesion-polar-molecule) of methane? Why is methane nevertheless a gas at room temperature?

**Solution of Exercise 30.5.**

Yes: [van der Waals interactions](#def-g11-polarity-and-cohesion-van-der-waals) exist between all [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule). But methane [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) are small (10 [electrons](https://one-course.com/books/chemistry/1/en/chapter/16-inside-the-atom#def-g9-inside-the-atom-nucleus)), so these interactions are very weak and break at very low temperature: methane boils near $-162\,{}^{\circ}\mathrm{C}$.

**Exercise 30.6 ★★.**

Say whether each [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) is polar: dichloromethane $\ce{CH2Cl2}$ (tetrahedral), tetrachloromethane $\ce{CCl4}$, ammonia $\ce{NH3}$, carbon dioxide $\ce{CO2}$, boron trifluoride $\ce{BF3}$ (a flat triangle with boron at the centre).

**Solution of Exercise 30.6.**

$\ce{CH2Cl2}$: polar (two polar $\ce{C-Cl}$ bonds and two nearly non-polar $\ce{C-H}$ bonds: no symmetry cancels them). $\ce{CCl4}$: non-polar (four identical bonds at the corners of a tetrahedron). $\ce{NH3}$: polar (pyramid). $\ce{CO2}$: non-polar (linear, opposite bonds). $\ce{BF3}$: non-polar (three identical [polar bonds](#def-g11-polarity-and-cohesion-polar-bond) at $120{}^{\circ}$ in a plane cancel).

**Exercise 30.7 ★★.**

In methanol, $\ce{CH3-OH}$, which hydrogen [atom](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) can be given in a [hydrogen bond](#def-g11-polarity-and-cohesion-hydrogen-bond)? Which [atom](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) can receive one? Can methanol and water [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) form [hydrogen bonds](#def-g11-polarity-and-cohesion-hydrogen-bond) with each other? Draw one.

**Solution of Exercise 30.7.**

The hydrogen of the $\ce{O-H}$ group can be given (not those of $\ce{CH3}$, bonded to carbon); the oxygen [atom](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom), with its two [lone pairs](https://one-course.com/books/chemistry/1/en/chapter/24-lewis-structures-and-the-shape-of-molecules#def-g10-lewis-and-shape-lone-pair), can receive. Yes: the $\ce{O-H}$ of methanol can bond to the oxygen of a water [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule), and an $\ce{O-H}$ of water to the oxygen of methanol, for example $\ce{CH3-O-H}$ $\cdots$ $\ce{OH2}$.

**Exercise 30.8 ★★.**

Explain why the boiling temperatures rise in the order $\ce{CH4}$ < $\ce{SiH4}$ < $\ce{GeH4}$.

**Solution of Exercise 30.8.**

The three [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) are non-polar and of the same shape, but larger and larger (10, 18 and 36 [electrons](https://one-course.com/books/chemistry/1/en/chapter/16-inside-the-atom#def-g9-inside-the-atom-nucleus)): their [van der Waals interactions](#def-g11-polarity-and-cohesion-van-der-waals) grow, and so do their boiling temperatures.

**Exercise 30.9 ★★.**

On the chart of the boiling temperatures of the hydrides, which group shows no unusual value for its first member? Why?

**Solution of Exercise 30.9.**

[Group](https://one-course.com/books/chemistry/1/en/chapter/20-the-periodic-table-a-first-look#def-g9-periodic-table-first-look-period) 14: methane has no hydrogen bonded to N, O or F and forms no [hydrogen bonds](#def-g11-polarity-and-cohesion-hydrogen-bond), so it follows the trend of its group.

**Exercise 30.10 ★★.**

The bonds $\ce{H-Cl}$, $\ce{H-Br}$, $\ce{H-I}$ are less and less polar (the electronegativities of chlorine, bromine and iodine are 3.16, 2.96 and 2.66), yet the boiling temperatures rise: $-85\,{}^{\circ}\mathrm{C}$, $-66\,{}^{\circ}\mathrm{C}$, $-35\,{}^{\circ}\mathrm{C}$. Which interaction wins, and why?

**Solution of Exercise 30.10.**

The [van der Waals interactions](#def-g11-polarity-and-cohesion-van-der-waals): the [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) grow from $\ce{HCl}$ to $\ce{HI}$, and the increase of these interactions with size outweighs the decrease of the attraction between the [partial charges](#def-g11-polarity-and-cohesion-polar-bond).

**Exercise 30.11 ★★.**

At room temperature chlorine is a gas and iodine a solid, though both are made of [non-polar molecules](#def-g11-polarity-and-cohesion-polar-molecule) $\ce{X2}$. Explain.

**Solution of Exercise 30.11.**

An iodine [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) is much larger than a chlorine [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) (106 [electrons](https://one-course.com/books/chemistry/1/en/chapter/16-inside-the-atom#def-g9-inside-the-atom-nucleus) against 34): its [van der Waals interactions](#def-g11-polarity-and-cohesion-van-der-waals) are much stronger, strong enough to hold the [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) in a solid at room temperature.

**Exercise 30.12 ★★★.**

Ethanol $\ce{CH3-CH2-OH}$, methoxymethane $\ce{CH3-O-CH3}$ and propane $\ce{CH3-CH2-CH3}$ have nearly the same [molar mass](https://one-course.com/books/chemistry/1/en/chapter/25-the-mole-and-molar-mass#def-g10-the-mole-molar-mass). They boil at $78\,{}^{\circ}\mathrm{C}$, $-25\,{}^{\circ}\mathrm{C}$ and $-42\,{}^{\circ}\mathrm{C}$. Which of them are polar? Which form [hydrogen bonds](#def-g11-polarity-and-cohesion-hydrogen-bond) between their own [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule)? Explain the order.

**Solution of Exercise 30.12.**

Propane is non-polar: [van der Waals interactions](#def-g11-polarity-and-cohesion-van-der-waals) only. Methoxymethane is polar (two polar $\ce{C-O}$ bonds in a bent $\ce{C-O-C}$) but has no hydrogen on its oxygen: no [hydrogen bonds](#def-g11-polarity-and-cohesion-hydrogen-bond) between its [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule). Ethanol is polar and its $\ce{O-H}$ groups form [hydrogen bonds](#def-g11-polarity-and-cohesion-hydrogen-bond). The stronger the attractions, the higher the boiling temperature: propane < methoxymethane < ethanol.

**Exercise 30.13 ★★★.**

In ice each water [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) is hydrogen-bonded to four neighbours, in an open network; in liquid water the network keeps breaking and partly collapses. Explain why ice floats on water. Why is this important for the fish of a frozen lake?

**Solution of Exercise 30.13.**

The open network of ice takes more room than the same [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) in the liquid, so ice is less dense than liquid water and floats. A lake freezes from the top: the layer of ice insulates the water underneath, which stays liquid, and the fish survive.

**Exercise 30.14 ★★★.**

Sort in increasing order of melting temperature, and justify by the attractions between the particles: potassium chloride $\ce{KCl}$, ice $\ce{H2O}$, solid methane $\ce{CH4}$.

**Solution of Exercise 30.14.**

Solid methane ([van der Waals interactions](#def-g11-polarity-and-cohesion-van-der-waals) between small [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule)) < ice ([hydrogen bonds](#def-g11-polarity-and-cohesion-hydrogen-bond)) < potassium chloride (attraction between [ions](https://one-course.com/books/chemistry/1/en/chapter/17-ions-and-ionic-solutions#def-g9-ions-ion)).

**Exercise 30.15 ★★★.**

Fluorine is more electronegative than oxygen, so an $\ce{H-F}$ bond is more polar than an $\ce{O-H}$ bond. Yet water boils at $100\,{}^{\circ}\mathrm{C}$ and hydrogen fluoride at $20\,{}^{\circ}\mathrm{C}$. Count the hydrogen [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) each [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) can give and the [lone pairs](https://one-course.com/books/chemistry/1/en/chapter/24-lewis-structures-and-the-shape-of-molecules#def-g10-lewis-and-shape-lone-pair) it can receive with, and explain.

**Solution of Exercise 30.15.**

A water [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) has two hydrogen [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) to give and two [lone pairs](https://one-course.com/books/chemistry/1/en/chapter/24-lewis-structures-and-the-shape-of-molecules#def-g10-lewis-and-shape-lone-pair) to receive with: every [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) can take part in four [hydrogen bonds](#def-g11-polarity-and-cohesion-hydrogen-bond), two given and two received, which builds a complete network. A [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) of hydrogen fluoride has three [lone pairs](https://one-course.com/books/chemistry/1/en/chapter/24-lewis-structures-and-the-shape-of-molecules#def-g10-lewis-and-shape-lone-pair) but only one hydrogen [atom](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom): it gives a single [hydrogen bond](#def-g11-polarity-and-cohesion-hydrogen-bond), so on average only one bond per [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) can form (zig-zag chains). Water has about twice as many [hydrogen bonds](#def-g11-polarity-and-cohesion-hydrogen-bond) per [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule), and boils higher.

## 30.7 Problem: Why Does Water Boil at $100\,{}^{\circ}\mathrm{C}$?

**Problem 30.1.**

Weekend problem — without hydrogen bonds, at what temperature would water boil?

Oxygen, sulfur and selenium are in the same group of the table, and all three form a compound with hydrogen: $\ce{H2O}$, $\ce{H2S}$, $\ce{H2Se}$. In each group of hydrides, boiling temperatures usually rise with the size of the [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule). Water breaks the rule. By how much?

**Part I — Three [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule).**

1. Draw the [Lewis structures](https://one-course.com/books/chemistry/1/en/chapter/24-lewis-structures-and-the-shape-of-molecules#def-g10-lewis-and-shape-lewis-structure) of $\ce{H2O}$ , $\ce{H2S}$ and $\ce{H2Se}$ . Why are they alike?
2. Compute their molar masses.
3. Compute the differences of [electronegativity](#def-g11-polarity-and-cohesion-electronegativity) of the bonds $\ce{O-H}$ , $\ce{S-H}$ and $\ce{Se-H}$ (oxygen 3.44, sulfur 2.58, selenium 2.55, hydrogen 2.20). Which bonds are clearly polar?
4. What is the shape of the three [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) ? Are they polar?
5. Count the [electrons](https://one-course.com/books/chemistry/1/en/chapter/16-inside-the-atom#def-g9-inside-the-atom-nucleus) of each [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) . Which has the strongest [van der Waals interactions](#def-g11-polarity-and-cohesion-van-der-waals) ?

**Part II — [Hydrogen bonds](#def-g11-polarity-and-cohesion-hydrogen-bond).**

6. Which of the three compounds forms [hydrogen bonds](#def-g11-polarity-and-cohesion-hydrogen-bond) between its [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) ? Why not the others?
7. How many [hydrogen bonds](#def-g11-polarity-and-cohesion-hydrogen-bond) can one water [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) take part in at most? Draw them.
8. Which interactions hold the [molecules](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) of hydrogen sulfide together in the liquid?

**Part III — The trend.**

9. Hydrogen sulfide boils at $212.9\,\mathrm{K}$ and hydrogen selenide at $-41.3\,{}^{\circ}\mathrm{C}$ . Express the first in degrees Celsius ( $\theta = T - 273.15$ ).
10. By how much does the boiling temperature rise from period 3 ( $\ce{H2S}$ ) to period 4 ( $\ce{H2Se}$ )?
11. Why does it rise?
12. Assuming the same rise from period 2 to period 3, at what temperature would a “normal” $\ce{H2O}$ boil?
13. Test the method on [group](https://one-course.com/books/chemistry/1/en/chapter/20-the-periodic-table-a-first-look#def-g9-periodic-table-first-look-period) 14: $\ce{SiH4}$ boils at $-112\,{}^{\circ}\mathrm{C}$ and $\ce{GeH4}$ at $-88.1\,{}^{\circ}\mathrm{C}$ . Predict the boiling temperature of $\ce{CH4}$ and compare with the real one, $-162\,{}^{\circ}\mathrm{C}$ . Is the extrapolation exact?
14. Do the same for [group](https://one-course.com/books/chemistry/1/en/chapter/20-the-periodic-table-a-first-look#def-g9-periodic-table-first-look-period) 17 ( $\ce{HCl}$ $-85.1\,{}^{\circ}\mathrm{C}$ , $\ce{HBr}$ $-66.4\,{}^{\circ}\mathrm{C}$ ) and compare with $\ce{HF}$ , $19.6\,{}^{\circ}\mathrm{C}$ .

**Part IV — The gap.**

15. Water really boils at $100\,{}^{\circ}\mathrm{C}$ . How large is the gap between the real and the extrapolated values?
16. Same for ammonia, using $\ce{PH3}$ $-87.8\,{}^{\circ}\mathrm{C}$ and $\ce{AsH3}$ $-62.5\,{}^{\circ}\mathrm{C}$ ; ammonia really boils at $-33.4\,{}^{\circ}\mathrm{C}$ .
17. Rank water, hydrogen fluoride and ammonia by the size of their gap, and explain the ranking by counting [hydrogen bonds](#def-g11-polarity-and-cohesion-hydrogen-bond) .
18. Without [hydrogen bonds](#def-g11-polarity-and-cohesion-hydrogen-bond) , would water be a solid, a liquid or a gas at room temperature? What would that mean for the Earth?
19. Why is the answer of question 12 only an estimate?
20. State the final answer: at about what temperature would water boil without [hydrogen bonds](#def-g11-polarity-and-cohesion-hydrogen-bond) ?

**Solution of Problem 30.1.**

**1.** $\ce{H-O-H}$, $\ce{H-S-H}$, $\ce{H-Se-H}$, each central [atom](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) with two [lone pairs](https://one-course.com/books/chemistry/1/en/chapter/24-lewis-structures-and-the-shape-of-molecules#def-g10-lewis-and-shape-lone-pair): O, S and Se have six [valence electrons](https://one-course.com/books/chemistry/1/en/chapter/23-electron-shells-and-the-periodic-table#def-g10-electron-shells-valence), being in the same group.

**2.** $M(\ce{H2O}) = 18.0\,\mathrm{g}/\mathrm{mol}$, $M(\ce{H2S}) =
34.1\,\mathrm{g}/\mathrm{mol}$, $M(\ce{H2Se}) = 81.0\,\mathrm{g}/\mathrm{mol}$.

**3.** $3.44 - 2.20 = 1.24$; $2.58 - 2.20 = 0.38$; $2.55 - 2.20 = 0.35$. Only the $\ce{O-H}$ bond is clearly polar.

**4.** Bent (four groups, two of them [lone pairs](https://one-course.com/books/chemistry/1/en/chapter/24-lewis-structures-and-the-shape-of-molecules#def-g10-lewis-and-shape-lone-pair)). Water is polar; hydrogen sulfide and hydrogen selenide only very slightly.

**5.** 10, 18 and 36 [electrons](https://one-course.com/books/chemistry/1/en/chapter/16-inside-the-atom#def-g9-inside-the-atom-nucleus): hydrogen selenide has the strongest [van der Waals interactions](#def-g11-polarity-and-cohesion-van-der-waals).

**6.** Only water: its hydrogen [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) are bonded to oxygen, one of the three very electronegative [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom); sulfur and selenium are not electronegative enough to give their hydrogen [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) a marked $\delta^+$.

**7.** Four: two through its own hydrogen [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom), two received by its two [lone pairs](https://one-course.com/books/chemistry/1/en/chapter/24-lewis-structures-and-the-shape-of-molecules#def-g10-lewis-and-shape-lone-pair).

**8.** [Van der Waals interactions](#def-g11-polarity-and-cohesion-van-der-waals) (including a weak attraction between the small [partial charges](#def-g11-polarity-and-cohesion-polar-bond)).

**9.** $212.9 - 273.15 = -60.3\,{}^{\circ}\mathrm{C}$ and $-41.3\,{}^{\circ}\mathrm{C}$.

**10.** $-41.3 - (-60.3) = 19.0\,{}^{\circ}\mathrm{C}$.

**11.** The [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule) is larger, so its [van der Waals interactions](#def-g11-polarity-and-cohesion-van-der-waals) are stronger.

**12.** $-60.3 - 19.0 = -79.3\,{}^{\circ}\mathrm{C}$.

**13.** Rise $-88.1 - (-112) = 23.9\,{}^{\circ}\mathrm{C}$; prediction for methane $-112 - 23.9 = -136\,{}^{\circ}\mathrm{C}$, against $-162\,{}^{\circ}\mathrm{C}$ in reality: the extrapolation is about $26\,{}^{\circ}\mathrm{C}$ too high. It is not exact; the real trend is not a straight line.

**14.** Rise $18.7\,{}^{\circ}\mathrm{C}$; prediction for hydrogen fluoride $-85.1 - 18.7 = -103.8\,{}^{\circ}\mathrm{C}$, against $19.6\,{}^{\circ}\mathrm{C}$: a gap of about $123\,{}^{\circ}\mathrm{C}$.

**15.** $100 - (-79.3) = 179\,{}^{\circ}\mathrm{C}$, about $180\,{}^{\circ}\mathrm{C}$.

**16.** Rise $25.3\,{}^{\circ}\mathrm{C}$; prediction $-87.8 - 25.3 =
-113\,{}^{\circ}\mathrm{C}$; gap $-33.4 - (-113) = 80\,{}^{\circ}\mathrm{C}$.

**17.** Water ($180\,{}^{\circ}\mathrm{C}$) > hydrogen fluoride ($123\,{}^{\circ}\mathrm{C}$) > ammonia ($80\,{}^{\circ}\mathrm{C}$). Water gives two hydrogen [atoms](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-atom) and receives with two [lone pairs](https://one-course.com/books/chemistry/1/en/chapter/24-lewis-structures-and-the-shape-of-molecules#def-g10-lewis-and-shape-lone-pair): four [hydrogen bonds](#def-g11-polarity-and-cohesion-hydrogen-bond) per [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule), all used. Hydrogen fluoride has one hydrogen to give, and ammonia only one [lone pair](https://one-course.com/books/chemistry/1/en/chapter/24-lewis-structures-and-the-shape-of-molecules#def-g10-lewis-and-shape-lone-pair) to receive with: on average fewer bonds per [molecule](https://one-course.com/books/chemistry/1/en/chapter/11-atoms-and-molecules#def-g7-atoms-and-molecules-molecule), and nitrogen, less electronegative, makes weaker ones.

**18.** A gas: it would boil near $-80\,{}^{\circ}\mathrm{C}$. The Earth would have no liquid water, no oceans, no rain, and none of the life that depends on them.

**19.** It extrapolates a straight line drawn through only two points, and the test on [group](https://one-course.com/books/chemistry/1/en/chapter/20-the-periodic-table-a-first-look#def-g9-periodic-table-first-look-period) 14 shows such an extrapolation can be off by some $25\,{}^{\circ}\mathrm{C}$.

**20.** Without [hydrogen bonds](#def-g11-polarity-and-cohesion-hydrogen-bond) water would boil at about $-80\,{}^{\circ}\mathrm{C}$, some $180\,{}^{\circ}\mathrm{C}$ below its real boiling point.
