Answer:
a). Moles of NaOH used = 0.002 moles
b). Moles of HCl used = 0.002 moles(because it is neutralisation reaction , so moles of HCl - NaOH)
c) Concentration of HCl =0. 16 M
Explanation:
Molarity(M) : It is the number of moles of the substance present in 1 liter of the solution. Molarity is expressed in the unit of moles/liter.
[tex]1liter = 1dm^{3}[/tex]
In the given question:
0.10 mol dm-3 of Sodium Hydroxide is given.
This is Molarity of NaOH = 0.10 mole/L(because dm3 and L are same thing)
Moles of NaOH in 1 liter solution = 0.1 mole
[tex]M_{NaOH}= 0.10[/tex]
[tex]V_{NaOH} = 20.0cm^{3}[/tex]
Now,
1 liter = 1000 ml
[tex]1liter = 1dm^{3}[/tex]
Put 1000 mL in place of 1 liter
[tex]1000mL = 1dm^{3}[/tex]
1 dm = 10 cm
[tex]1dm^{3}[/tex]= 1000cm^{3}[/tex]
replace 1 dm3 by cm3
[tex]1000mL = 1000cm^{3}[/tex]
1 mL = 1 cm3 ,
So , 20 cm3 = 20 mL
[tex]moles=\frac{Molarity\times volume}{1000}[/tex]
[tex]M_{NaOH}= 0.10[/tex]
[tex]V_{NaOH} = 20.0cm^{3}[/tex]
[tex]moles=\frac{0.10\times 20}{1000}[/tex]
moles of NaOH used solution = 0.002 moles
[tex]V_{HCl} = 12.5 mL[/tex]
use equation :
[tex]M_{NaOH}V_{NaOH}=M_{HCl}V_{HCl}[/tex]
[tex]0.10\times 20.0=M_{HCl}\times 12.5[/tex]
[tex]M_{HCl}=\frac{0.10\times 20}{12.5}[/tex]
[tex]M_{HCl}=0.16M[/tex]
So, 0.16 M of HCl neutralises NaOH
Concentration of HCl =0.16 M
[tex]HCL+NaOH\rightarrow H_{2}O+NaCl[/tex]
