Yes, This is very helpful for A/L exam in Sri Lanka 🇱🇰 thank u very much 😊

Quite relatable mate, it's an entirely different feeling when you have actually seen the reaction compared to just knowing theory.

Im from sri lanka too machn.

Mee tooo❤

Me too 😁✨️🤙

You probably added the starch too early leading for the starch to bind too tightly to the iodine

لان يقوم بالمعاييرة بشكل سريع لذلك دائمًا يجب القيام بالمعاير ببطء حتى تصل لنقطة المعايرة الدقيقة

Hi Shad, if you could let me know at which point this happened and the exact solutions you were using then I may be able to help.

@@KEGSChemistry Hi, the precipitate and the pink gas was when i first added 2mL 5M HCl and 5mL 0.1M KI and 20mL diluted chlorine (we diluted 4mL chlorine to 250mL with deionized water). The precipitate was totally gone after i titrated til it became light yellow and there was nothing after the titration was totally done(it became colorless). Im not sure about if the gas was gone, because we didnt even notice it and the teacher pointed it out afterawrds. I already handed my report and explained that the precipitate might be iodine (since it is black), and this happened because there wasnt enough iodide to make triiodide, which is more soluble. And the gas might be explained with iodines volayility. I really hope you can help me, because i can fix on it before getting the grade. (We needed 20.8mL 0.02mL Na2S2O3 in average to finish the titration, the mass precentage of NaOCl in house chlorine was found to be 4.6% but on the bottle it saids around 4%). Thank you very much.

@@shadl2676 Thanks for the clairification. Based on the numbers you have given me I think your conclusion of there not being enough KI present is accurate. After mixing your Chlorine solution and KI you would have a 0.17% (wt/v) concentration of Iodine, but the solubility limit in pure water is 0.029% (wt/v) - i.e. much lower. This is enhanced in the presence of iodide, but in an aqueous iodine (Lugol's) solution you have doulbe the % (wt/v) of KI to form triiodide. Based on the volume of KI which you used, you will only have 0.086% (wt/v) of KI, which is actually lower than iodine and hence not enough to make iodine soluble. When you add thiosulfate, it regenerated iodide, which presumably then re-dissolved your iodine and led to it completely reacting with the thiosulfate. I guess this could have taken time hence you over-shot the end-point. But if gas left the beaker I would have expected you to register less chlorine than expected in your titration. If there's a next time, make sure you have a big excess of iodide ions. We tend to use 1 M KI to achieve this, but it is expensive so I'm sure you could get away with less.

@@KEGSChemistry Thank you very much for answering. It makes more sense now. About the gas, i expected to register less chlorine too but from the data and calculations i registered a bit more. As i said earlier i registered 4.55% while on the flask it said around 4% and i think they mean at least less than 4.5%, so i'm really flustered. As i mentioned earlier i wrote that the gas might have something to do with iodine's volatility, but do you think that the gas is iodine or could it be something else?. And i wonder about another thing, does thiosulfate react with only triiodide, or with iodine too?. Thank you again, i really appreciate it, none of my teachers was willing to help me, you saved me.

Yes, it will do. But if you carry out the titration correctly you'll never get to see this!

@@KEGSChemistry Thank you Sir!

I've never seen it done this way! It would make the colour change very hard to detect as iodine would bind to starch present and make it go black immediately after addition. It would then fade and come back when you added more. Thiosulfate in the burette is much better!

It's never done this way as you want excess iodide in order to generate a quantity of iodine that is directly proportional to the number of moles of your analyte. If you look at this video it explains more: kzbin.info/www/bejne/aoq8np2VhNmCjJY

Iodine is very insoluble in water (as you perhaps already know). The trick is to make it up in a solution of potassium iodide, which causes much more to dissolve as the I^- and I_2 form a triiodide ion (I_3^-). This ion is what gives the brown colour to the solution. If you want to make an aqueous iodine solution, try searching for a recipe for "Lugol's iodine" and you should find something sensible. Alternatively, this type of solution is probably fairly easy to buy, but you have to be careful with the label as to what the concentration of I_2(aq) actually is. As we use excess KI to form the I_2 here, there will always be enough I^- ions to keep the I_2 soluble and the I_2 produced thus has the typical brown colour of the I_3^- ion.

@@KEGSChemistry all right thank you very much

@@KEGSChemistry How was the I_2 produced when KI was added to Fe^3+ solution?

@@SandeepKumar-jj7zi Fe3+ reduces I- to form I2

@@bh-rf9dd or oxidizes?

Glad it helped

Hi there, please correct me if I'm wrong, but I think I can explain it: The point of the whole thing is: you want to determine the amount of Fe3+ in the solution, so you first reduce it with 2I- which turns into I2, and then you reduce the I2 with 2Na2S2O3 to 2I-. Amount of Fe3+ in the original solution was equal to HALF the amount of Na2S2O3 you added in the end: 1) Fe3+ + 2I- ---> I2 + Fe2+ (I2 is dark brown) 2) I2 + 2Na2S2O3 ---> 2NaI + Na2S4O6 (solution turns transparent) See? 1 mole of Fe3+, 2 moles of Na2S2O3. You know how much of Na2S2O3 you've added, so you can calculate how much of Fe3+ there was originally. Now, why do we make a pause in adding Na2S2O3 when the solution is light yellow and add starch? Why can't we just add Na2S2O3 until the solution turns transparent? To answer this, let's look at step 2 again: I2 + 2Na2S2O3 ---> 2NaI + Na2S4O6 As i said, solution turns transparent, but it does so gradually(!), thus NOT letting you determine precise amount of sodium thiosulfate you needed to reduce all the I2 to 2I-. Well, starch solves this problem: 1) Fe3+ + 2I- ---> I2 + Fe2+ (I2 is dark brown) 2) 2I2 + 2Na2S2O3 ---> I2 + 2NaI + Na2S4O6 (that's the pause: small amount of remaining I2 makes the solution light yellow) 3) starch + remaining I2 ---> dark blue complex of starch and I2 (I2 is still reactive!) 4) [I2 + starch complex] + 2Na2S2O3 ---> starch + 2NaI + Na2S4O6 (solution turns transparent instantly(!) when all the iodine reacted, thus LETTING you determine precise amount of sodium thiosulfate you needed to reduce all the I2 to 2I-). I'm three weeks late but I hope this helps!

As he points out at minute 1:14, the starch is added close to the end-point to avoid inaccurate results because of strong bindings to the iodine

It's zeroth order as the concentration of iodine doesn't affect the rate of the reaction

Sorry this is so late, but if you want to learn about the calculations you could try watching this video here: kzbin.info/www/bejne/aoq8np2VhNmCjJY

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