(a)(i) State three methods of preparing salts, giving one example in each case of a...

Explanation

(a)(i) - By the action of a dilute acid on a metal e.g. Zn + 2HCI --> ZnCl\(_2\) + H\(_2\) or Mg + H\(_2\)SO\(_4\) \(\to\) MgSO\(_4\) + H\(_2\)

- By neutralisation of an alkali by an acid e.g NaOH + HCI -> NaCI + H\(_2\)O

-By the action of a dilute acid on an insoluble base e.g 2HCI + MgO -> MgCl\(_2\) + H\(_2\)O

-By the action of a dilute acid on a trioxocarbonate (IV) e.g 2HCI + CaCO\(_2\) \(\to\) CaCl\(_2\) ± H\(_2\) O + CO\(_2\)

(ii) NaH\(_2\)PO\(_2\) -An acid salt;

(CH\(_3\)COO)\(_2\) Pb -An organic salt

KAI(SO\(_4\))\(_2\) . 12H\(_2\)O - hydrated double salt

(b)(i) HCI + Ag NO\(_3\) -> AgCI \(\downarrow\) + HNO\(_3\)O

(ii) NaNO\(_3\) is preferred to AgNO\(_3\) in the thermal decomposition to give O\(_2\) because NaNO\(_3\) decomposes to only solid and O\(_2\) gas making it easy to collect, unlike AgNO\(_3\) which decomposes into silver, oxygen and nitrogen (IV) oxide.

(iii) Silver cannot displace Cu\(^{2+}\) in the solution of CuSO\(_4) but Zn can, because Zn is higher than Cu in the activity series but Ag is lower than Cu.

(c)(i) Efflorescence

(ii) Na\(_2\)CO\(_3\). 10H\(_2\)O or CuSO\(_4\) .10H\(_2\)O.

-mH\(_2\)O

(iii) X .mH\(_2\)O \(\to\) X. from the heat equation 160 + 18m --> 160 ; 5 ->1.80

heat

\(\frac{160 + 18m}{5}\) = \(\frac{160}{1.80}\)

288 + 32.4m = 512

m = \(\frac{512}{32.4}\)

= 15.8

m = 16 molecules