Question

During a titration experiment, a 24.8 ml sample of arsenic acid (It, AsO) of unknown concentrations analyzed. A total of 33.3

0 0
Add a comment Improve this question Transcribed image text
Answer #1

Ans :- 0.224 M

firstly, calculate number of moles of Ca(OH)2 used. given.volume of Caloh), solution - 3333 one Concentration of caloH) Solut

Add a comment
Know the answer?
Add Answer to:
During a titration experiment, a 24.8 ml sample of arsenic acid (It, AsO) of unknown concentrations...
Your Answer:

Post as a guest

Your Name:

What's your source?

Earn Coins

Coins can be redeemed for fabulous gifts.

Not the answer you're looking for? Ask your own homework help question. Our experts will answer your question WITHIN MINUTES for Free.
Similar Homework Help Questions
  • It's a weak acid strong base titration Experiment 4: Identification of an unknown acid by titration...

    It's a weak acid strong base titration Experiment 4: Identification of an unknown acid by titration Page 2 of 15 Background In this experiment, you will use both qualitative and quantitative properties to determine an unknown acid's identity and concentration. To do this analysis, you will perform a titration of your unknown acid sample-specifically a potentiometric titration where you use a pH meter and record pH values during the titration, combined with a visual titration using a color indi- cator...

  • In a titration experiment, it was determined that 63.45 mL of hydrobromic acid was needed to...

    In a titration experiment, it was determined that 63.45 mL of hydrobromic acid was needed to reach the equivalence point of a 56.0 mL sample of 0.154 M ruthenium hydroxide solution. What is the concentration of the hydrobromic acid solution? (Show all work) ___ Ru(OH)3(aq) + ___ HBr (aq)   → ___ H2O (l) + ___ RuBr3 (aq)

  • Calculate the concentration of a barium hydroxide solution if it takes 35.42 mL of a 0.1042...

    Calculate the concentration of a barium hydroxide solution if it takes 35.42 mL of a 0.1042 M solution of phosphoric acid to reach the endpoint of titration for a 25.00 mL sample of the barium hydroxide solution 3 Ba(OH)2 (aq) + 2 H3PO4 (aq) 6H20 (1) + Baz(PO4)2 (aq) Express your answer in molarity. Do not include the units.

  • 6. Titration of a 50.00 mL solution of an unknown diprotic acid required 35.95 mL of...

    6. Titration of a 50.00 mL solution of an unknown diprotic acid required 35.95 mL of 0.1367 M sodium hydroxide to reach the second equivalence point. What was the initial concentration of the unknown acid . A 0.8752 g sample of unknown containing potassium hydrogen phthalate (KHP) required 28.23 mL of a 0.1037 M NaOH for neutralizatjon. What is the mass percentage of KHP in the sample?

  • The data for the titration of 25.00 mL of Unknown Acid Sample #80 with 0.1508 M...

    The data for the titration of 25.00 mL of Unknown Acid Sample #80 with 0.1508 M NaOH (aq) was plotted on the graph below. To help with your analysis we have summarized some of the key numerical values that were determined from the original data - using the methods on Page 13 of your lab manual to graphically determine the equivalence point. Unknown #27 Volume of NaOH added at the potentiometric endpoint (mL) 21.25 mL Volume of NaOH added at...

  • Calculate the concentration of an unknown acid if 23.50 mL of 0.250 M NaOH was needed to reach the endpoint for the tit...

    Calculate the concentration of an unknown acid if 23.50 mL of 0.250 M NaOH was needed to reach the endpoint for the titration of 15.00 mL of the unknown diprotic acid. H2A(aq) + 2 NaOH(aq) → Na2A(aq) + 2 H2O(1) Select one: 0 a. 0.160 M O b. 0.783 M O C. 0.392 M O d. 0.319 M O e. 0.196 M

  • An unknown solution was analyzed for Ni by an EDTA titration. A 50.00 mL sample of...

    An unknown solution was analyzed for Ni by an EDTA titration. A 50.00 mL sample of the unknown was treated with 25.00 mL of 0.2404 M EDTA. The excess EDTA was then back titrated with 8.52 mL of 0.0694 M Zn2+ to reach the equivalence point. What was the concentration of Ni (in unit of M) in the 50.00 mL sample? Please keep your answer to three decimal places.

  • Ca(OH)2 (aq) + 2HCl (aq) CaCl2 (aq) + H2​O (l) An aqueous solution of Ca(OH)2with a...

    Ca(OH)2 (aq) + 2HCl (aq) CaCl2 (aq) + H2​O (l) An aqueous solution of Ca(OH)2with a concentration of 0.161 M was used to titrate 25.00 mL of aqueous HCl. 18.63 mL of the Ca(OH)2was required to reach the endpoint of the titration. An aqueous solution of Ca(OH)2with a concentration of 0.161 M was used to titrate 25.00 mL of aqueous HCl. 18.63 mL of the Ca(OH)2was required to reach the endpoint of the titration. A) How many moles of base...

  • To reach the second endpoint for the titration of 10.00 ml of a thiosulfuric acid unknown...

    To reach the second endpoint for the titration of 10.00 ml of a thiosulfuric acid unknown solution, 14.32ml of 0.08751 M NaOH is needed. Look up the molecular formula for maleic acid and write a balanced chemical equation for its reaction with NaOH. What is the concentration of the thiosulfuric acid solution? 3.

  • A 23.00 −mL sample of an unknown HClO4solution requires titration with 20.32 mL of 0.2200 MNaOH...

    A 23.00 −mL sample of an unknown HClO4solution requires titration with 20.32 mL of 0.2200 MNaOH to reach the equivalence point. Part A What is the concentration of the unknown HClO4 solution? The neutralization reaction is: HClO4(aq)+NaOH(aq)→H2O(l)+NaClO4(aq) Express your answer using four significant figures. concentration = nothing   M M   

ADVERTISEMENT
Free Homework Help App
Download From Google Play
Scan Your Homework
to Get Instant Free Answers
Need Online Homework Help?
Ask a Question
Get Answers For Free
Most questions answered within 3 hours.
ADVERTISEMENT
ADVERTISEMENT