Ph of 10 -8 m hcl solution
WebA titration is carried out for 25.00 mL of 0.100 M HCl (strong acid) with 0.100 M of a strong base NaOH (the titration curve is shown in Figure 14.18). Calculate the pH at these volumes of added base solution: (a) 0.00 mL (b) 12.50 mL (c) 25.00 mL (d) 37.50 mL. Solution (a) Titrant volume = 0 mL. The solution pH is due to the acid ionization of ... WebApr 23, 2024 · Calculate pH and pOH of 1.0*10^-7 HCl solution? (hint;use quadratic equation) Chemistry 1 Answer Michael Apr 23, 2024 pH = 6.79 pOH = 7.21 Explanation: This is a very low concentration so we must take into account the dissociation of water rather than use 10−7 as the H+ concentration, which would give a pH of 7. Water dissociates: …
Ph of 10 -8 m hcl solution
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WebThe pH of 10 − 8 M HCl solution is. Q. I f 3 x 2 + 4 x y + 2 y 2 + x ... WebClick here👆to get an answer to your question ️ The pH of 10^-6 M HCl , 10^-7 M HCl and 10^-8 M HCl respectively is: ... How many litres of water must be added to 1 litre of an aqueous solution of HCl with a pH of 1 to create an aqueous solution with a pH of 2? Medium. View solution > View more. CLASSES AND TRENDING CHAPTER.
WebApr 6, 2024 · Explanation: Hydrochloric acid is a strong acid which dissociates into single hydrogen (H +) ions in an aqueous solution. The pH of a solution is given by the equation, pH = −log[H +] [H +] is the hydrogen ion concentration in terms of molarity And so, we got: pH = −log[10−2] = 2 Answer link WebMar 20, 2024 · Pankaj Singh chemistry expert explains the How to calculate pH of 10-8 M HCl solution with step by step explanation. ionic equilibrium. For more NCERT quest...
WebJul 9, 2014 · To calculate the pH of HCl you need to know the concentration expressed in molarity (mol HCl/L solution). You will use the following equation to find the pH. pH = -log … WebDec 2, 2024 · (a) Calculate pH of 1.0 × 10–8 M solution of HCl. (b) The species: H2O, HSO4– and NH3 can act both as Bronsted acids and bases. For each case, give the corresponding conjugate acid and conjugate base. equilibrium class-11 1 Answer +1 vote answered Dec 2, 2024 by Maisa (46.0k points) selected Dec 2, 2024 by Panna01 Best answer
WebAug 14, 2024 · [H +] = 0.02 mmol H + 74.90mL = 3 × 10 − 4 M Hence, pH ≈ − log[H +] = − log(3 × 10 − 4) = 3.5 This is significantly less than the pH of 7.00 for a neutral solution. Exercise 17.4.1 Calculate the pH of a solution prepared by adding 40.00mL of 0.237M HCl to 75.00 mL of a 0.133M solution of NaOH. Answer pH after the addition of 10 ml of Strong …
Web10 -8 M indicates a very dilute solution. Thus, H + ions of water cannot be ignored. But dissociation of water is suppressed due to common ion effect. ∴ [H +] ≠ 10 -7 M but less … how many carbs for atkins diethigh rock wisconsin dellsWebA 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 with a … how many carbs for gestational diabetesWeb10) What is the final pH if 0.02 mol HCl is added to 0.500 L of a 0.28 M NH 3 and 0.22 M NH 4 Cl buffer solution? (K b (NH 3 ) = 1.8 × 10 - 5 ) A) 4.78 B) 4.64 C) 11.32 D) 9.36 E) 9.22 11) Using the data in the table, which of the conjugate bases below is the strongest base? how many carbs for a dayWebMay 2, 2024 · 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 the molar hydrogen ion concentration or the molar hydrogen ion concentration equals 10 to the power of the negative pH value. high rock wineryWebpH = -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 case H+ ion from water can be ignored but not in this case because [H+] from acid is less. how many carbs for diabetesWebA titration is carried out for 25.00 mL of 0.100 M HCl (strong acid) with 0.100 M of a strong base NaOH (the titration curve is shown in Figure 14.18). Calculate the pH at these … high rock wi dells