What mass of silver (Ag) contains the same number of atoms as 50.6 g of boron (B)?

1 Answer
anor277
Sep 18, 2017

Approx. 500*g.............

Explanation:

"Moles of boron"=(50.6*g)/(10.81*g*mol^-1)=4.68*mol

Now remember that the mole is simply a number, i.e. 6.022xx10^23*mol^-1... And to get the same number of silver atoms, all I have to do is multiply this molar quantity by the molar mass of silver, 107.9*g*mol^-1.....

And so, 107.9*g*mol^-1xx4.68*mol-=??

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