Review Assignment Chm 152 Reactions in Aqueous Solutions Name: 4) Reagent grade
ID: 952404 • Letter: R
Question
Review Assignment Chm 152 Reactions in Aqueous Solutions Name: 4) Reagent grade cond grade sulfuric acid, HSO, is between 95 and 98% acid in water. To precisely know the concentration, one on, one needs to do a titration of a sample of the acid. Aldrich gives the sulfurie acid as 1.840 g'ml. The molar mass of sulfuric acid is 98.08g/mol. sul density of a) Based on density and molecular mass, what is the estimated concentration of the st mass, what is the estimated concentration of the stock sulfuric acid? (mol/L) A student dilutes 100 mL of the stock sulfuric acid into 1.000 L distilled water. The student then uses a 10.0 mL sample of this dilution for a titration. It takes 0.9978 M NaOH solution to reach the equivalent point. i) Write the balanced molecular equation for this neutralization reaction; remember b) lation for titration.it takes 15.0 m n for a titration. It takes 35.70 mlL, of HzSOs has two protons that react with a strong base: ii) Write the complete ionic equation for this reaction: ii) Write the net ionic equation for this reaction: iv) What is the concentration of sulfuric acid in the dilution (mol/L)? v) What is the concentration of sulfurie acid in the stock solution? (molVL) Page 2 of 3Explanation / Answer
4)
a)
for 1000 ml = 1 L
mass of H2S04 = 1.84 x 1000 = 1840
moles = mass / molar mass
so
moles of H2S04 = 1840 / 98.08 = 18.76
now
molarity = moles / volume (L)
so
molarity of H2S04 = 18.76 / 1 = 18.76
so
concentration of stock solution is 18.76 M
b)
i)
H2S04 + 2 NaOH ---> Na2S04 + 2H20
ii)
2H+ + S042- + 2Na+ + 2OH- ---> 2Na+ + S042- + 2H20
iii)
2H+ + 2OH- ---> 2H20 (l)
iv)
we know that
moles = molarity x volume (L)
so
moles of NaOH = 0.9978 x 35.7 x 10-3 = 35.62146 x 10-3
now
H2S04 + 2 NaOH ---> Na2S04 + 2H20
we can see that
moles of H2S04 = 0.5 x moles of NaOH
so
moles of H2S04 = 0.5 x 35.62146 x 10-3 = 17.81073 x 10-3
volume = 10 ml
so
conc = moles x 1000 / volume (ml)
conc = 17.81073 x 10-3 x 1000 / 10
conc = 1.781073
so
concentration of H2S04 in the dilution is 1.781073
v)
now
for dilution
M1V1 = M2V2
so
M1 x 100 = 1.781073 x 1000
M1 = 17.81073
so
the stock solution of H2S04 is 17.81073 M
3)
moles = molarity x volume (L)
so
moles of Na+ = 0.15 x 470 x 10-3 = 0.0705
b)
moles of Na+ = 0.249 x 30 x 10-3 = 0.00747
c)
total moles of Na+ = 0.0705 + 0.00747 = 0.07797
d)
total volume = 470 + 30 = 500 ml
e)
[Na+] = moles x 1000 / volume (ml)
so
[Na+] = 0.07797 x 1000 / 500
[Na+] = 0.15594 M
5)
a)
moles = mass / molar mass
so
moles of Zinc = 23.05 / 65.38
moles of zinc = 0.35255
b)
we can see that
moles of H2 = moles of Zn reacted = 0.35255
now
mass = moles x molar mass
so
mass of H2 = 0.35255 x 2 = 0.705
so
0.705 grams of H2 can be produced
c)
molar mass of HCl is 36.46 g / mol
d)
we know that
moles = molarity x volume (L)
so
moles of HCl = 1.2 x 500 x 10-3
moles of HCl = 0.6
e)
we can see that
moles of H2 produced = 0.5 x moles of HCl
so
moles of H2 = 0.5 x 0.6 = 0.3
mass of H2 = 0.3 x 0.2 = 0.6 grams
f)
we can see that
moles of HCl required = 2 x moles of Zn = 2 x 0.35255 = 0.705
but
only 0.6 moles of HCl is present
so
HCl is the limiting reagent
g)
so
mass of hydrogen produced is 0.6 grams