Question

Determine the pH during the titration of 22.2 mL of 0.283 M perchloric acid by 0.184 M potassium hydroxide at the following points: (1) Before the addition of any potassium hydroxide (2) After the addition of 17.1 mL of potassium hydroxide (3) At the equivalence point (4) After adding 42.8 mL of potassium hydroxide

Answer 1

Answer:-

This question is is answered by using the simple concept of titration of strong acid and strong base. Using the simple stoichiometry.

The answer is given in the image,

Anscell's (HUON] = 0.283M [KOU] = 0.184 M H404 +KOH + KAO4 +H20 1) [H+] = CHU04) = 0.283 pH=- log (H+) =- loy(0-283) PH= 0.55 2). After addition of 17.1 mL KOH total volume = 22-2+ 17-1 - 39.3m2 Males HUOQ = 0.283x22.2 Loco -6-28 26x103 moi, Mclcs of iron added = 0-184x17.1 -3.1469x1030). Net moles HC104 = = 6.2826x103_3-1464X103 --3-1362x103 mol. CH+] - 3-1362 X103 x1000 39.3 -0.0198M 1 pkz-10910-07981 PM = 1.10 (3) At equivalence point [ht]= [on] = 1.0X107 pr=-log (107) Pu= 7.00 let) 42.8 mlo koH added Iooo Total volume = 22-2+ 42.8 -65-0 ML Moles 1 = 0.184X42.8 1000 +.8752xin-3

Excess mores q koh added = 7.8752x10^-6-2826X10-3 = 1.5926 X10-3 mol. con] = 1:5926 X10-3x1000 - 6500 [04] = 0.0 245 POH= -log[on] = -log(0-0245) pou = 1.61 pu= 14-pon = 14-1.61 PH= 12.39