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Consider the reaction: 2 Al + 3Br2 → 2 AlBr3 Suppose a reaction vessel initially contains 5.0 mole Al and 6.0 mole Br2. What is in the reaction vessel once the reaction has occurred to the fullest extent possible?

Respuesta :

the balanced equation for the above reaction is as follows;
2Al + 3Br₂ --> 2AlBr₃
stoichiometry of Al to Brâ‚‚ is 2:3
there are 5.0 mol of Al and 6.0 mol of Brâ‚‚
if Al is the limiting reactant,
if 2 mol of Al reacts with 3 mol of Brâ‚‚
then 5.0 mol of Al reacts with - 3/2 x 5 = 7.5 mol of Brâ‚‚
but only 6 mol of Brâ‚‚ is present therefore Brâ‚‚ is the limiting reactant.
if 3 mol of Br₂ reacts with 2 mol of Al 
then 6.0 mol of Brâ‚‚ reacts with - 2/3 x 6 = 4 mol of Al

the molar ratio of Al to AlBr₃ is 2:2
the number of moles of AlBr₃ formed is 4 mol of AlBr₃
amount of excess Al - 5.0 mol - 4.0 mol = 1 mol 
therefore at the end of the reaction, 

1 mol of Al and 4 mol of AlBr₃ in the reaction vessel

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