WebbAnswer. 293. Solubility product of a salt AB is 1 x 10 -8 M in a solution in which the concentration of A + ions is 10 -3 M .The salt , will precipitate when the concentration of … Webb4 maj 2015 · A 10.00-g sample of the ionic compound NaA, where A is the anion of a weak acid, was dissolved in enough water to make 100.0 mL of solution and was then titrated with 0.100 M HCl. After 500.0 mL HCl was added, the pH was 5.00. The experimenter found that 1.00 L of 0.100 M HCl was required to reach the stoichiometric point of the titration. a.
Choose the most correct answer: The pH of 10-8 M of HCl is
WebbAnswer: 6.98 pH of a solution can be calculated as- pH = -log[H+] The concentration of H+ ion from HCl is 10^(-8) M but this is not the overall concentration of H+ ion because some H+ ion will be liberated from water also. When the concentration of H+ from is acid is very high, then in that ca... Webb2 maj 2024 · How to Calculate pH and [H+] The equilibrium equation yields the following formula for pH: pH = -log 10 [H +] [H +] = 10 -pH. In other words, pH is the negative log of … how are excavators made
(b) What is the pH of 8× 10–8 M HCl? answer is not 7.09 or 6.96.
WebbA 10.0 mL solution of 0.380 M NH3 is titrated with a 0.120 M HCl solution. Calculate the pH after 40.0 mL of HCl has been added. A 10.0 mL solution of 0.390 M NH3 is titrated … WebbIn aqueous solution BaCl2 behaves as a simple salt; in water it is a 1:2 electrolyte [clarification needed] and the solution exhibits a neutral pH. Its solutions react with sulfate ion to produce a thick white precipitate of barium sulfate . BaCl2 + Na 2 SO 4 → 2 NaCl + BaSO4 Oxalate effects a similar reaction: WebbExample #1: Here's a variant that's not framed in a tricky way: Show that the pH of a solution remains 7.00 when 1.0 x 10¯ 11 moles of HCl is added to the solution. Solution: … how many majors does baylor university offer