Calculate the number of atoms in the followin | vedclass

Name: Exam Paper Generator | JEE NEET Paper Generator | Vedclass
Brand: Vedclass
Rating: 5 (35 reviews)

Question

(N/A) $(i)$ $1 \ mol$ of $Ar = 6.022 	imes 10^{23}$ atoms of $Ar$. $52 \ mol$ of $Ar = 52 	imes 6.022 	imes 10^{23} = 3.131 	imes 10^{25}$ atoms o

Vedclass · Accepted Answer

Vedclass · Answer

(N/A) $(i)$ $1 \ mol$ of $Ar = 6.022 	imes 10^{23}$ atoms of $Ar$. $52 \ mol$ of $Ar = 52 	imes 6.022 	imes 10^{23} = 3.131 	imes 10^{25}$ atoms of $Ar$. $(ii)$ Atomic mass of $He = 4 \ u$. $4 \ u$ is the mass of $1$ atom of $He$. Therefore,$52 \ u$ of $He$ contains $= \frac{52}{4} = 13$ atoms of $He$. $(iii)$ Gram atomic mass of $He = 4 \ g$. $4 \ g$ of $He$ contains $6.022 	imes 10^{23}$ atoms. Therefore,$52 \ g$ of $He$ contains $= \frac{6.022 	imes 10^{23} 	imes 52}{4} = 7.8286 	imes 10^{24}$ atoms.

Calculate the number of atoms in the following: $(i)$ $52 \ mol$ of $Ar$ $(ii)$ $52 \ u$ of $He$ $(iii)$ $52 \ g$ of $He$

Similar Questions

In a mixture of $1 \ g$ of $H_2$ and $8 \ g$ of $O_2$,the mole fraction of hydrogen is

Calculate the number of atoms of oxygen present in $176 \ g$ of $CO_2$.

The number of water molecules in $250\, mL$ of water is closest to $.....\, \times 10^{23}$.
[Given: density of water is $1.0\, g\, mL^{-1}$; Avogadro's number $= 6.023 \times 10^{23}$]

Calculate the number of molecules in $18 \ mg$ of water in terms of Avogadro's number $(N_A)$.

The number of oxygen atoms in $4.4 \ g$ of $CO_2$ is,

Vedclass Test Series

Exam Paper Generator

Online Exam Module