Question

How would we represent the reaction between hydrochloric acid and aluminum hydroxide?

Answer 1

We need the stoichiometric equation:

`Al(OH)_3(s) + 3HCl(aq) rarr AlCl_3(aq) + 3H_2O(l)`

Explanation:

Perhaps more realistically, we could write:

`Al_2O_3(s) + 6HCl(aq) rarr 2Al^(3+) + 3H_2O(l)`

In each equation the stoichiometry is identical: 1 equiv aluminum reacts with 3 equiv hydrochloric acid.

`"Moles of aluminum"` `=` `(0.80*g)/(78.00*g*mol^-1)` `=` `1.0xx10^-2*mol`.

And thus we need 3 equiv of the given acid:

`=` `(3xx1.0xx10^-2*cancel(mol))/(6.0*cancel(mol)*cancel(L^-1))xx10^3*mL*cancel(L^-1)` `~=` `5*mL`