What is the percentage yield if #729*g# of tetrabromoethane is prepared from #60.3*g# acetylene and stoichiometric bromine?

1 Answer
anor277
May 18, 2017

We assess the stoichiometric reaction:

#HC-=CH(g) + 2Br_2(l) rarrBr_2C-CBr_2H#

Explanation:

And thus there is 1:1 stoichiometry between the acetylene reactant and the tetrabromo product:

Now #"%yield"="Moles of product"/"Moles of reactant"xx100%#

And here, #"%yield"# #=# #((729.0*g)/(345.65*g*mol^-1))/((60.3*g)/(26.04*g*mol^-1))xx100%=91.1%#

The calculation for #"yield"# is simplified a bit here in that there were excess bromine, and 1:1 stoichiometry between the organic reactant, and the organic product. Do you see what is going on?

I would not be very happy if I had to do a reaction with almost a half kilo of elemental bromine. It is one of the most corrosive substances to handle in a lab, and can cause horrific burns.

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