It takes 62.5 mL of a 0.420 M solution of HCl is titrated with Ca(OH)2. It takes 37.4 mL of Ca(OH)2 to reach the equivalance point. What is the concentration (molarity) of the Ca(OH)2?
It takes 62.5 mL of a 0.420 M solution of HCl is titrated with Ca(OH)2. It...
5.0 ml of a solution of Ca(OH)2 is titrated with 0.033 M HCl. The endpoint is reached when 7.67 ml of HCl is dispensed. What is the concentration of OH- ions in the Ca(OH)2 solution? No units are required. Round answer to 3 decimal places.
5.0 ml of a solution of Ca(OH)2 is titrated with 0.03 M HCl. The endpoint is reached when 6.45 ml of HCl is dispensed. What is the concentration of OH- ions in the Ca(OH)2 solution? No units are required. Round answer to 3 decimal places.
25 mL of a 0.126 M solution of Ba(OH)2 is titrated with a solution of HCl of unknown molarity. If the equivalence point of the titration is obtained after addition of 28.3 mL of the HCl, the molar concentration of HCl is: Ba(OH)2 + 2 HCl = 2 H2O + BaCl2 A. 0.134 M B. 0.252 M C. 0.285 M D. 0.223 M E. 0.063 M
A 25.0 mL sample of a saturated Ca(OH)2 solution is titrated with 0.026 M HCl, and the endpoint is reached after 35.9 mL of titrant are dispensed. Based on this data, what is the concentration of the hydroxide ion?
1) A 15.0 ml. sample of 1.78 x 10-3 M Ca(OH)2 is being titrated against 2.18 x 103 M HCI. Determine the volume of HCl needed to reach the equivalence point 2) A 30.00 mL sample of unknown concentration of HaPO, solution is titrated with 0.100 M Ba(OH)2 solution. The equivalence point is reached when 26.38 mL of Ba(OH)2 solution is added. What is the concentration of the unknown HaPO4 solution? 3) A 35.0 mL sample of 1.78 x 10-2...
Question 8 2 pts 15.0 ml of a saturated Ca(OH)2 solution is titrated with 0.050 M HCl. The equivalence point is found to be when 17.1 ml of the HCl has been added. What was the initial concentration of the [OH-]? O 0.0439 M 0 0.0219 M O 0.0285 M. O 0.0570 M • Previous Next
A 25.00 mL solution of Ca(OH)2 was titrated to the stoichiometric point with 12.15 mL of 0.144 M HNO3 (aq). What was the initial concentration of Ca(OH)2 in the solution?
A 2.5×10−2 M solution of HCl is used to titrate 147 mL of a Ca(OH)2 solution of unknown concentration. 1. If 100 mL of HCl is required, what is the normality of the Ca(OH)2 solution? Express your answer using two significant figures. 2. What is the molarity? Express your answer using two significant figures.
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. Part 1 (1 point) How many moles of base were required to react completely with the acid in this reaction? x 10 mol Ca(OH)2 -- Part 2 (1 point) How many moles of HCl were present in the original 25.00 mL of acid? x 10 mol HCl +...
An aqueous solution of Ca(OH)2with a concentration of 0.143 M was used to titrate 25.00 mL of aqueous HCl. 14.73 mL of the Ca(OH)2was required to reach the endpoint of the titration. How many moles of base were required to react completely with the acid in this reaction? How many moles of HCl were present in the original 25.00 mL of acid? What is the molarity of the original HCl solution? 04 Question (a points) aSee page 166 Watch the...