Question

How many grams of potassium chlorate are required in the preparation of 90.0 cubic decimeters of oxygen?

I know the balanced equation is `2KClO_3 -> 3O_2 + 2KCl`.

Kind of confused b/c we convert from a gas (oxygen at 22.4 L/mol STP) to potassium chlorate (solid)

Answer 1

I make it approx...`300*g` `"chlorate salt...."`

Explanation:

You gots....

`KClO_3(s) +Deltastackrel{Mn^(+IV)}rarrKCl(s) + 3/2O_2(g)`

We want `90*dm^3-=90*L` dioxygen gas...

`"Moles of dioxygen"=(90*L)/(22.4*L*mol^-1)=4.02*mol`

And given this requirement we need AT LEAST....

`4.02*molxx2/3xx122.55*g*mol^-1=??*g` with respect to chlorate salt....

Note that especially in the UK we use `1*dm^3-=1*L`...How?

Well................,

`1*dm^3=(1xx10^-1*m)^3=1xx10^-3*m^3=1/1000*m^3`

`-=1*L`...cos there are `1000*L*m^-3`....