A volume of 20.05 mL of NaOH was used to titrate a 0.45 g sample of potassium hydrogen phthalate (KHP), a monoprotic acid, which has a molecular weight of 204.2 g/mol. Calculate the molarity of the NaOH solution.
For the above titration of potassium hydrogen phthalate with NaOH, if you have the following pH indicators: methyl red, bromothymol blue, and phenolphthalein, which indicator should you use? Explain why.
A volume of 20.05 mL of NaOH was used to titrate a 0.45 g sample of...
1. A volume of ___ mL of 0.100 M NaOH(aq) is required to titrate 0.500 g of potassium hydrogen phthalate (often abbreviated KHP) to the endpoint. 2. A 0.5741 g sample of a monoprotic acid was titrated with 0.1008 M NaOH(aq). If 37.89 mL of sodium hydroxide solution were required for the titration, the molar mass of the monoprotic acid is ___ g/mol.
grams of KHP 0.6413 mL NaOH needed to titrate KhP to endpoint 38.80 Grams of unknown acid: 1.5106 mL NaOH needed to titrate unknown acid to endpoint 33.55 need to know molarity of NaOH solution and Molar mass of unknown acid. Please help and show work! CHEM 265 LAB EXPERIMENT NUMBER 4 DETERMINATION OF THE MW OF AN UNKNOWN ACID This experiment utilizes a titration to determine the molecular weight of an unknown acid. In this experiment, the endpoint of...
The following graph shows the pH curve for the titration of 25 mL of a 0.1 M monoprotic acid solution with a 0.1 M solution of a monoprotic base. mL of 0.1 M base added (1) The pH curve represents the titration of a _______(weak/strong) acid with a _______(weak/strong)base. (2) Choose a suitable indicator for the endpoint of the titration from the following pulldown list __________.(bromocresol green / methyl red / bromothymol blue / cresol red / thymol blue /...
Potassium hydrogen phthalate (KHP) is used to standardize sodium hydroxide. If 15.18 mL of NaOH(aq) is required to titrate 0.5614 g KHP to the equivalence point, what is the concentration of the NaOH(aq)? (The molar mass of KHP = 204.2 g/mol) HCH,0, (aq) + OH (aq) SCH,02 (aq) + H,0(1)
A 1.413-g sample of KHP takes 19.43 mL of a NaOH solution to titrate it to a phenolphthalein end point. What is the molarity of the NaOH solution? The molar mass of KHP is 204.2g/mol.
QUESTION 1 6 points Save Answer The purpose of an indicator in an acid-base titration is to indicate the of the titration. Use Table 10.2 for the following question. If an acidic solution is titrated with a basic solution and methyl violet is used as an indicator, the solution color will change from to QUESTION 2 3 points Save Answer The molarity of a solution prepared by dissolving 17.0 g of hydrochloric acid (HCI (aq) in 133 mL of water...
Name Section/CRN EXPERIMENT 9 POTENTIOMETRIC DETERMINATION OF AN EQUILIBRIUM CONSTANT PRE-LABORATORY QUESTIONS The following preparatory questions should be answered before coming to lab. They are intended to introduce you to several jdeas that are important to aspects of the experiment. You must turn in your work to your instructor before you will be allowed to begin the experiment. Potassium acid phthalate, KHP (KHC4H&O4), is a primary standard reagent used to determine exactly the concentration of a solution of base, such...
1. Calculate the volume (in mL) of the amount of 0.200 M NaOH required to neutralize a monoprotic weak acid solution made by 2.00 g of potassium hydrogen phthalate (KHP) dissolved in water. 2. Identify the equivalence point, the half-equivalence point on the titration curve below and determine the pKa of the acid. 12- 10 PH 8-1 6 N 0+ 20 Titrant Volume (ML) 40
Suppose that you wish to titrate formic acid (CH3OH, a weak acid) with potassium hydroxide (a strong base). From the list below, which would be the best indicator to use for this titration? Name of Indicator pH Range Methyl Yellow 2.9 - 4.0 Methyl Orange 2.5 - 4.4 Congo Red 3.0 - 5.0 Phenolphthalein 8.3 - 10.0
1.A solution has a pH of 5.5. What would be the color of the solution if each of the following indicators were added? (i) bromophenol blue(ii) bromothymol blue(iii) methyl red (iv) phenolphthalein 2.Calculate the pH at the equivalence point when 50.0 mL of a 0.100 M HN3 acid (a weak monoprotic acid having a Ka = 1.90x10-5) is titrated with 0.100 M NaOH. The titration reaction can be represented as HA + NaOH --- > NaA + H2O Hint: At...