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Answer to Question #83274 in Chemistry for Divine
Question #83274
How many aluminium ions will be discharged by 0.33F?[Avogadro constant = 6.02*10^23
Expert's answer
.n (Al^(3+)) =?
.m (F^-) =0.33
N_A= 6.02× 10^23
Find the amount of substance of F^-
.n=m/A_r = 0.33/19 =0.017 mol
Reaction between Al^(3+) and F^- is
Al^(3+) +3F^-= AlF_3
. n (Al^(3+))= 1/3 n (F^-)= 0.017/3 =0.0057
. n (ions of Al^(3+))= n× N_A=0.0057×6.02×10^23 =3.43×10^21
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