Calculate the no. Of aluminium ions present in 0.051 grams of aluminium oxide.
Answers
Calculate the number of aluminium ions present in 0.051g of aluminium oxide(Al2O3).
Molecular weight of Al2O3 = 102 g.
102 g of Al2O3 contains 6.022X1023 molecules.
0.051g of Al2O3 contain X number of molecules.
X = 0.051 X 6.022X1023 /102 = 0.003 X 1020
X = 3 X 1020
1 molecule of Al2O3 contains – 2 Al+3ions.
☺ Hello mate__ ❤
◾◾here is your answer...
1 mole of Al2O3 = 2 × 27 + 3 × 16 = 102g
i.e.,
102g of Al2O3 = 6.022 × 10^23 molecules of Al2O3
Then, 0.051 g of Al2O3 contains
=(6.022×10^23/102) ×0.051 molecules of Al2O3
= 3.011 × 10^20 molecules of Al2O3
The no. Al^3+ in one molecules of Al2O3 is 2.
Here, Al^3+ = aluminium ion .
Therefore, The number of Al^3+ present in 3.11 × 10^20 molecules (0.051g) of Al2O3
= 2 × 3.011 × 10^20
= 6.022 × 10^20
I hope, this will help you.
Thank you______❤
✿┅═══❁✿ Be Brainly✿❁═══┅✿