What is the mass associated with a numerical quantity of #9.033xx10^23# fluorine atoms?

1 Answer
anor277
Dec 10, 2017

Well we know that #6.022xx10^23# #""^19F# atoms have a mass of #19.0*g#....

Explanation:

Of course, fluorine normally occurs as the diatomic molecule, i.e. #F_2#, as do most of the gaseous elements..

And so we take the product...

#(9.033xx10^23*"atoms")/(6.022xx10^23*"atoms"*mol^-1)=1.5*mol#...

And so we gots a mass of .................

#1.5*molxx19.00*g*mol^-1=28.5*g#.

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