Answer:
Partial pressure of Ne is 0.61 atm
Step-by-step explanation:
Let's assume mixture of He and Ne behaves ideally.
Then, according to Dalton's law for partial pressure in a mixture of gas-
![P_(gas)=x_(gas).P_(total)](https://img.qammunity.org/2020/formulas/chemistry/college/cj0ab1d3n7d2zhfxcl48ylr9o26f93lifj.png)
Where
is partial pressure of a gas in mixture,
is mole fraction of a gas in mixture and
is total pressure of mixture.
Here,
= (number of moles of Ne)/(Total number of moles in mixture)
So,
=
![(0.56)/(0.56+0.32)=0.64](https://img.qammunity.org/2020/formulas/chemistry/college/ag0zmoljzl2s2uu23z3jbl5qegq8lfq3yb.png)
So,
=
![(0.64* 0.95 atm)=0.61atm](https://img.qammunity.org/2020/formulas/chemistry/college/j3endo1quwivyiwe5mzishmkftvwjy6l7k.png)