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Wednesday, March 6, 2019

Determination of Chlorine and Iodine in Water Essay

I. institutionThe purpose of this laboratory was to determine the amount of centiliter and one in a sample of piddle by titration using a stiffen indicator and to standardize a atomic number 11 thiosulfate theme. centiliter is added to municipal peeing supplies to purify it enough to become safe to drink. Iodine is also added to water when people camp or go hiking in the back area where they cannot bring purified water along. Chlorine and tincture of single are added to violent death microorganisms in water. Oxidation fightions occurred in this experiment. The Chlorine was oxidized be perform it lost electrons in the reaction. The unity was reduced because it gained electrons. The solutions cristaled a yellow-bellied food coloring because of the iodine which disappears at one time every last(predicate) of the iodine has reacted in the titration. Sodium thiosulfate was the titrant in the process of titration. It was added to react with the iodine in the solution.St arch was added to give the solution a zesty color near the expiry of the titration. Potassium iodate (KIO) was use to standardize the sodium thiosulfate solution. Practical applications would include testing unknown samples of water and municipal water supplies for the compactness of chlorine present because too much can cause health problems and not taste well. Not enough added, wouldnt kill the microorganisms in the water to make it safe to drink.II. ProcedureFirst the normalisation of Sodium Thiosulfate was completed. A 50mL burettete was obtained and rinsed twice with the sodium thiosulfate solution. It was then make full with the solution. The tip of the buret was checked to make sure there werent any bubbles in it. Then a 250mL beaker was obtained. A 25mL pipette was used to add exactly 25mL of the KIO solution. Then 50mL of deionized water and about .25g of solid KI was added. The solution was stirred until the solid was completely dissolved. 2mL of glacial acetic sulf urous was then added. Then, the beaker was placed under the buret and was swirled as the sodium thiosulfate was added. The buret was slowed as the color became lighter. When the color was approximately gone, 1mL of the starch solution was added to turn the solution blue. Then it was slowly titrated until the color disappeared. The concluding volume of the solution in the buret was recorded and the amount of titrant was calculated. This titration was repeated both to a greater extent times to standardize the stringency of the thiosulfate. Then the immersion of Chlorine in Tap water was found. It was repeated the almost exactly the same direction as before.The buret was filled with the sodium thiosulfate solution and the initial observe was recorded. Then a 50mL graduated cylinder was rinsed with angle water dickens to three times. The graduated cylinder was then filled with cold work stoppage water. It was then poured into a clean beaker and .25g of KI and 2mL glacial aceti c sulfurous were added and stirred until the solid was dissolved. Then the solution was titrated. 1mL of starch was added then the yellow color almost disappeared. It was then titrated slowly until the blue color disappeared. The last-place volume was recorded and the volume of titrant used was determined. This was repeated two to a greater extent times.Then the submersion of iodine was determined in the iodine purified water. The buret was refilled and the initial volume was recorded. Then the 50mL graduated cylinder was rinsed with the iodine solution. 50mL of the iodine solution was then obtained and poured into a clean beaker. Then .25g of KI and 2mL of acetic acid were added and the solution was stirred until it was dissolved. Then it was titrated until the yellow color almost disappeared. 1mL of starch was then added and the solution was titrated slowly until the blue color disappeared. The final volume was recorded and the volume of titrant used was then determined. This w as repeated two much times. Then everything was cleaned and put away.III. Data and Results table 1 normalization of Sodium Thiosulfate solvent sign buret Volume (mL) Final burette Volume (mL) Volume utilize (mL) 1st Standardization 50 25.64 24.36second Standardization 50 25.99 24.013rd Standardization 50 26.21 23.79Table 2 Titration of Tap Water Initial Buret Volume (mL) Final Buret Volume (mL) Volume Used (mL) 1st Titration 50 48.29 1.172nd Titration 50 48.25 1.753rd Titration 50 48.20 1.80Table 3 Titration of Iodine Solution Initial Buret Volume (mL) Final Buret Volume (mL) Volume Used (mL) 1st Titration 50 45.61 4.392nd Titration 50 45.59 4.413rd Titration 50 45.60 4.40Table 4 Average Concentrations Molarity ( jettyes/Liter)Sodium Thiosulfate Solution 1.0610Chlorine in Tap Water 1.8610Iodine in Solution 4.6610Sample Calculation- Concentration of Chlorine(1.0610)*(0.00175L)=1.8610 moles thiosulfate(1.8610mol thiosulfate)*(1 mol Cl/2 mol thiosulfate)=9.2810 mol Cl (9.2810mol C l)/.05L=1.8610 moles Cl/LiterIn the first standardization of the sodium thiosulfate solution, 24.36mL of the titrant was used. 24.01mL and 23.79mL were used for the second and third standardizations. With the concentration of the sodium thiosulfate solution divided the clean volume of those gave the average thiosulfate concentration which was 1.0610 moles per liter. For the titration of wiretap water, an average of 1.75mL of the sodium thiosulfate solution was used. After the calculations, the concentration of chlorine in tap water was 1.8610 moles of chlorine per liter.The average of the titrations of the iodine solution was 4.40mL of titrant used. After the calculations, 4.6610 moles of iodine were present per liter. most useful observations were conducted. The iodine in the solution made it turn a yellow color when the glacial acetic acid was added. It started to disappear as the iodine was reacting with the titrant. When the starch solution was added, the solution turned blue . As the final solving neared, the blue color started to dissipate. When the resultant was reached, the solution was clear with no color left in the solution. Sources of error could include adding too much titrant from the buret into the solution.IV. ConclusionThe purpose of this lab was to identify the concentration of chlorine and iodine in different samples of water. The results fulfilled the purpose of this lab because the concentrations of chlorine and iodine were found. The concentration of chlorine in the tap water was 1.8610 moles of chlorine per liter. The molarity of iodine in the iodine water solution was 4.66 x10 moles per liter. The concentration of iodine was significantly higher than the amount of chlorine in tap water. There was more iodine in the water because of the solid KI being added to the solution. Tap water contains small amounts of chlorine because thats all that is needed to kill the microorganisms living in the water that are pernicious to people. The r esults that were obtained were unexpected because there wasnt a standard value to go off of. The percent error wasnt able to be obtained. realistic sources of error would include adding too much of the titrant to the solution. This would affect the results by having more than enough titrant used. This would affect the concentration values and make them higher than they in truth were. Chemical concepts used were titrations. When the Iodide ions, from the potassium iodide, react with the chlorine in the tap water, chloride ions and I were formed. Then the I was titrated with the sodium thiosulfate solution which created the iodide ions. Before the endpoint of the titration, the starch was added.Once all of the iodine reacted with the thiosulfate, the blue color disappeared because the endpoint was reached and the iodide ions were formed. Also the standardization of the sodium thiosulfate solution was performed. When the potassium iodate reacted with the solid KI and the acetic acid, it created I and water. The I was titrated and formed with the thiosulfate and created iodide ions also. The concentration of the thiosulfate was 1.0610 moles per liter. That result was expected because it should have been around .001 M and it was .00106 M.

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