What molar quantity of #"potassium bromide"# results from oxidation of a #2.45*g# mass of potassium?

1 Answer
anor277
Apr 24, 2017

Well, we interrogate the stoichiometric reaction:

#K(s) + 1/2Br_2(l) rarr KBr(s)#

Explanation:

And thus the molar quantity of potassium bromide is PRECISELY EQUIVALENT to the molar quantity of potassium metal.........

#"Moles of potassium"=(2.45*g)/(39.10*g*mol^-1)=0.0626*mol#.

And thus the molar quantity of #0.0626# WITH RESPECT to #"potassium bromide"# is the same.........

Given quantitative yield, what mass of the salt would result?

Related questions
See all questions in Equation Stoichiometry
Impact of this question
1499 views around the world
You can reuse this answer
Creative Commons License