Question

Given 7 equiv calcium atoms; 10 equiv of carbon atoms; and 9 equiv of nitrogen atoms, how many equiv of `"calcium cyanide"` could we make?

Answer 1

The formula for `"calcium cyanide"` is `Ca(C-=N)_2`; we could make four such formula units with the given quantities.

Explanation:

`"Calcium cyanide"` is formulated by taking the calcium ion, `Ca^(2+)`, and binding it to 2 equiv of the cyanide ion, `""^(-):C-=N`.

So for `7xxCa`, `10xxC`, and `9xxN`, at most we could make `9xx^(-):C-=N` anions.

However from these anions, we could make AT MOST only `4xxCa(C-=N)_2` units. Are you happy with this?