Chemistry, Third edition

ANSWERS TO EXERCISES AND REVISION QUESTIONS

(iii) (iv) 8 (v)[BeCl 4 ]^2 –

Beryllium has a more stable electronic configuration in

[BeCl 4 ]^2 – , because the atom is surrounded by eight

electrons.

5C

(i) (a) (b)

(c) (d)

(e) (f)

(ii)Nitrogen (1s^2 2s^2 2p^3 ) cannot expand its octet as

there are no available d orbitals to do so.

(iii)Chlorine can expand its octet, but it is too small an

atom to accommodate seven atoms of fluorine around it.

Iodine is a much bigger atom.

5D

(i)trigonal planar (ii)tetrahedral

(iii)roughly tetrahedral (not all the bond lengths are the

same)

(iv)tetrahedral (v)octahedral.

5E

(i)Distorted tetrahedral with respect to the electron

pairs; ‘bent’ with respect to H–S bonds (similar to water).

(ii)Distorted tetrahedral with respect to the electron

pairs; trigonal pyramidal with respect to its bonds

(similar to ammonia).

(iii)Distorted octahedral with respect to the electron

pairs.

(iv)Distorted tetrahedral with respect to the electron

pairs; ‘bent’ with respect to its bonds.

(v)As for (iv).

5F

(i)trigonal planar (remember that all the bond lengths

are the same because of resonance)

(ii)trigonal planar (iii)linear (iv)tetrahedral

(v)trigonal planar.

5G

1. (i)no – linear (ii)yes (iii)no – tetrahedral
   (iv)yes (v)yes.


2. (i)yes (ii)H+–F–.
   5H
   (i)two
   (ii)As Fig. 5.6, with ‘2’ ions and two free electrons for
   each ion in the structure.
   (iii)three
   (iv)Na, Mg, Al (the more valence electrons that are free,
   the stronger the bonding).
   (v)Al (it has the strongest metallic bonding, therefore it
   requires most energy to break down the structure).
   5I
   ····CC–CC–CC–C····

5J

(i)Kr, Ar, Ne, He (the smaller the atom, the fewer the

electrons and the weaker the forces that attract the

atoms together).

(ii)Again, I 2 is the largest molecule and has the greatest

number of electrons, so the forces that attract I 2

molecules together are the strongest and it has the

highest melting and boiling points. The other halogens

follow this trend.

Revision questions

5.1

(i) (ii)

(iii) (iv)

(v)

5.2The shapes with respect to the electron pairs around

the central atom are roughly the following:

(i)trigonal bipyramidal (ii)linear

(iii)trigonal planar

(iv)trigonal bipyramidal (v)tetrahedral.

5.3

linear

5.4 (i)no (ii)no (iii)no (iv)yes (v)yes.

5.5Substances which exist as atoms or non-polar

molecules (such as the noble gases or iodine), liquefy or

solidify at appropriate temperatures.

5.6Ca because it has two valence electrons and

stronger metallic bonding (more electron density to

‘glue’ the positive ions together).

5.7Each carbon atom in graphite has one free, mobile

electron. There are no free electrons in diamond, they

are all involved in covalent bonding.

5.8A CO 2 molecule is linear and non-polar. Only London

forces attract the molecules together in the solid state.

5.9The oxygen atom of water has two lone pairs of

electrons and can therefore form two hydrogen bonds

per molecule. The nitrogen atom in ammonia has only

one lone pair and ammonia molecules can only form one

hydrogen bond per molecule. In addition, oxygen is more

electronegative than nitrogen.

5.10No, there is not enough electronegativity difference

between carbon and hydrogen in the C–H bond to

produce a hydrogen that is sufficiently positively charged

to hydrogen bond to the oxygen that is bonded to carbon

in a neighbouring molecule.

5.11If you make a model you will find there are 8

hexagons and 12 pentagons.

Unit 6

Exercises

6A

(i)

Ca^2 +,2NO H^2 O

3 – (s) —Ca^2 +(aq)2NO 3 – (aq)

(ii)

2K+,SO H^2 O

42 – (s) —2K+(aq)SO 42 – (aq)

(iii)

2Na+,CO H^2 O

32 – ·10H 2 O(s) —2Na+(aq)

CO 32 – (aq)10H 2 O(l)

6B

The nitrate ion is the spectator ion. Overall ionic reaction

is:

Cu^2 +(aq)2NO 3 – (aq)Zn(s)Zn^2 +(aq)

2NO 3 – (aq)Cu(s)

or

Cu^2 +(aq)Zn(s)Zn^2 +(aq)Cu(s)

This is the same ionic equation as for the reaction

between copper sulfate solution and zinc solid.

6C

(i)carbonate, sulfide and hydroxide.

(ii)We need to mix a solution of a soluble barium salt

(such as barium ethanoate, (CH 3 COO–) 2 Ba^2 +) with a

solution of a soluble sulfate (such as magnesium

sulfate, Mg^2 +,SO 42 – ).

(iii)We need to mix a solution of a soluble iron salt (such

as iron(II) sulfate, Fe^2 +,SO 42 – ) with a solution of a soluble

hydroxide (such as sodium hydroxide, Na+,OH–).

6D

Coordinate bond.

6E

HBr(g)H 2 O(l)H 3 O+(aq)Br–(aq)

or

HBr(g) —H^2 OH+(aq)Br–(aq)

6F

(i)Calcium chloride will form a white precipitate,

whereas magnesium nitrate will not. Potassium sulfate

may also give a cloudiness of (slightly soluble) silver

sulfate depending upon the concentrations of reactants

used.

(ii)The precipitates are silver bromide (AgBr) and silver

iodide (AgI):

Ag+(aq)Br–(aq)AgBr(s)

Ag+(aq)I–(aq)AgI(s)

These precipitates are useful in confirming the presence

of bromides and iodides in solution.

6G

(i)The rest do not contain a sulfate ion.

6H

(ii)Ammonium carbonate:

NH 4 +(aq)OH–(aq)NH 3 (g)H 2 O(l)

6I

1. (i)two (ii)one.


2. (i)ethanoates (acetates) (ii)nitrates.
   6J
   K+,OH–(s) —H^2 OK+(aq)OH–(aq)

Ca^2 +,2OH–(s) —H^2 OCa^2 +(aq)2OH–(aq)

6K

(i)Fe(s)H 2 SO 4 (aq)FeSO 4 (aq)H 2 (g)

(ii)Fe(s)2H+(aq)Fe^2 +(aq)H 2 (g)

(SO 42 – (aq) is the spectator ion).

6L

(i)D is Zn^2 +(solid ZnO turns yellow upon heating). The

white precipitate suggests that C is Cl–.

(ii)Dilute sulfuric acid. Confirm this by adding BaCl 2 /HCl

(white precipitate observed).

(iii)Mix the solutions together one by one. The copper

solution is coloured blue. Both sodium carbonate and

sodium hydroxide will form a blue precipitate with copper

ions since both copper(II) hydroxide and copper(II)

carbonate are insoluble (see Table 6.2). However, only

sodium carbonate will ‘fizz’ with the remaining solution,

dilute hydrochloric acid.

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