Given that 32.0g sulphur contains 6.02 x 10 23 sulphur atoms how many atoms are there in 2.70g of aluminium? {Al = 27, S =32}
6.02 x 10 23
3.01 x 1022
6.02 x 1022
5. 08 x 1022
3.01 x 1022
Explanation
Video Explanation
No video available
Post your Contribution
Discussions (8)
1g of sulphur is equals to Avogadro's constant;6.02 then 0.1g of Al is equals to ----.then if more less divide..0.1x 6.02x1021then the answer becomes 6.02x1022
n=m/M i.e no of moles equals given mass(m) over molar mass(M)
n=2.7/27
n=0.1
then 6.02x10^23 x 0.1=6.02x10^22 atoms
The correct answer is D
Since sulphur, 32 is given to be 6.02×10^23, and aluminium is 2.70(the unknown), cross multiplying
So 2.7 × Avogadro's constant, 6.02 ×10^23 divided by 32. Equals 5.08 ×10^22.
Unlike what is done, where aluminium is 6.02×10^23, that's incorrect.
