Molar mass of acetic acid:_ (g/mol) Titrate 5.00 mL of vinegar for each trial. Assume the density of vinegar is 1.00 g/mL. Initial Reading (mL), NaOH buret Final Reading (mL), NaOH buret Total* NaOH volume used in titration (mL) Moles of NaOH used (= moles of acetic acid in 5.00 mL sample) Mass of acetic acid in 5.00 mL sample (g) Experimental % acetic acid Experimental average % acetic acid Trial 1 0.60 21.60 21 m2 Trial 2 0.30 22.50 22 тг Trial 3 0.00 22.30 22.30 ml 0.50 22.00 21.3 mu
Molar mass of acetic acid:_ (g/mol) Titrate 5.00 mL of vinegar for each trial. Assume the density of vinegar is 1.00 g/mL. Initial Reading (mL), NaOH buret Final Reading (mL), NaOH buret Total* NaOH volume used in titration (mL) Moles of NaOH used (= moles of acetic acid in 5.00 mL sample) Mass of acetic acid in 5.00 mL sample (g) Experimental % acetic acid Experimental average % acetic acid Trial 1 0.60 21.60 21 m2 Trial 2 0.30 22.50 22 тг Trial 3 0.00 22.30 22.30 ml 0.50 22.00 21.3 mu
Chemistry
10th Edition
ISBN:9781305957404
Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Publisher:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Chapter1: Chemical Foundations
Section: Chapter Questions
Problem 1RQ: Define and explain the differences between the following terms. a. law and theory b. theory and...
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Help with this post lab pls. Provide me with the formulas and step to complete the table please. Then i will substitute myself. Thanks
Transcribed Image Text:Concentration of NaOH (M):
Molar mass of acetic acid:
_(g/mol)
Titrate 5.00 mL of vinegar for each trial. Assume the density of vinegar is 1.00 g/mL.
Initial Reading (mL),
NaOH buret
% error:
Final Reading (mL),
NaOH buret
Total* NaOH volume
used in titration (mL)
Moles of NaOH used
(= moles of acetic acid in 5.00
mL sample)
0.1903
Mass of acetic acid in
5.00 mL sample (g)
Experimental % acetic acid
Experimental average %
acetic acid
Deviation
Trial 1
0.60
21.60
21 m2
Average Deviation
*Total volume = final reading - initial reading
Trial 2
5.00
0.30
22.50
22 тг
Trial 3
Assume the vinegar is 5.00% acetic acid, as reported on the label. Compare your
experimental % acetic acid to the % listed on the label and calculate the % error.
[(experimental % - 5.00)|
% error =
x 100
0.00
22.30
22.30ml
0.50
22.00
21.3 mu
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