Analysis:
- Calculate the theoretical yield of ASA to be obtained in this synthesis.
.
..
g salicylic acid
g salicylic acidmol salicylic acid
1 mol salicylic acid200
138 11
# =0 0145..
.mL acetic anhydride
mLg
g acetic anhydridemol acetic anhydride
1500 108
102 11
## 1= 0.053 mol acetic anhydrideSince 1 mol of salicylic acid is required for each mole of acetic anhydride, salicylic acid is
the limiting reagent.. mol salicylic acid.
mol salicylic acid
mol ASA
mol ASAg ASA
10 0145
11
1180 17
##= 2.61 g ASA- What was the actual percentage yield of the impure product?
%%..
.
yield g %
g
261 100 72 8 yield190
= # =- To analyze the purity of the ASA he produced, the student measured out 0.400 g of pure,
analytical reagent grade ASA and then treated it with NaOH to create sodium salicylate.
He then added a FeCl 3 −KCl−HCl solution to create a purple salicylate complex. He then
diluted this solution to 250. mL with distilled water. Determine the molarity of the stock
solution.
..
L..g ASA
g ASAmol ASA M
0 2500 400
180 17
##^1 =888 10-^3- 5.00, 4.00, 3.00, 2.00 and 1.00 mL samples of the stock solution were then diluted to
100. mL with distilled water. Determine the molarity of each aliquot.
''- mL standard sol n
5.00 mL stock sol n 8.88 10 M
4.44 10 M3
:# = # 4- ^ h _ i -
''- mL standard sol n
4.00 mL stock sol n 8.88 10 M
3.55 10 M3
:# = # 4- ^ h _ i -
''- mL standard sol n
3.00 mL stock sol n 8.88 10 M
2.66 10 M3
:# = # 4- ^ h _ i -
''- mL standard sol n
2.00 mL stock sol n 8.88 10 M
1.78 10 M3
:# = # 4- ^ h _ i -
''- mL standard sol n
(1.00 mL stock sol n) 8.88 10 M
8.88 10 M3
:# = # 5- _i-
- Samples from these aliquots were then colormetrically analyzed with the spectrophotome-
ter and a Beer’s plot drawn (see Figure 2).
Laboratory Experiments