If one mole of aluminium contains 6 x 1023 atoms of aluminium, how many atoms are contained in 0.9g of aluminium?
(Al = 27)
1.0 x 1021
6.6 x 1021
2.0 x 1022
1.0 x 1022
5.4 x 1023
Explanation
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If 27g of Al contain 6.02 x 10²³
0.9g of Al will contain:
0.9 x 6.02 x10²³/27
=2.0 x 10²². Copy that
Here's how to solve this problem:
Step 1: Find the number of moles in 0.9g of aluminium
One mole of aluminium has a mass of 27g.
To find the number of moles in 0.9g, divide the mass by the molar mass: 0.9g / 27g/mol = 0.0333 moles
Step 2: Find the number of atoms in 0.0333 moles of aluminium
One mole of aluminium contains 6 x 10^23 atoms.
To find the number of atoms in 0.0333 moles, multiply the number of moles by Avogadro's number: 0.0333 moles * 6 x 10^23 atoms/mol = 2.0 x 10^22 atoms
Answer:
The answer is C. 2.0 x 10^22 atoms.
m=0.9
mm=27
n=1
Avogadro's constant=6.02×10^23
Therefore;n=m/mm
=0.9/27
=0.0333
1mol. =. 6.02×10^23
0.0333 mol = x
CROSS MULTIPLY
=6.02×10^23×0.0333/1
=2×10^22....ans
