Calculate the volume, in milliliters, of a 0.200 M NaOH solution that will completely neutralize...
Question:
Calculate the volume, in milliliters, of a 0.200 M NaOH solution that will completely neutralize each of the following:
- 3.9 mL of a 1.22 M HNO3 solution.
- 8.2 mL of a 0.845 M H3PO4 solution.
Process of Titration:
The titration method is a very useful method to calculate the unknown concentration of a basic or acidic solution by using a solution of known concentration. However, to find the concentration, we have to use the opposite nature solution.
Answer and Explanation: 1
Become a Study.com member to unlock this answer! Create your account
View this answerAccording to the law of titration:
$$\begin{align} V_1S_1=V_2S_2 \end{align} $$
Where,
- {eq}V_1 {/eq} is the volume of the acidic solution.
- {eq}...
See full answer below.
Ask a question
Our experts can answer your tough homework and study questions.
Ask a question Ask a questionSearch Answers
Learn more about this topic:

from
Chapter 11 / Lesson 9Learn about strong acid - strong base titration. Understand strong acid - strong base reactions and how to find an unknown substance concentration, and see the curve.
Related to this Question
- Calculate the volume, in mL, of a 0.216 M NaOH solution that will completely neutralize 8.60 mL of a 0.825 M H3PO4 solution.
- Calculate the volume, in mL, of a 0.216 M NaOH solution that will completely neutralize 3.79 mL of a 1.31 M HNO3 solution.
- Calculate the volume (in milliliters) of 0.171 M H3PO4 required to neutralize 36.2 mL of 0.259 M NaOH solution.
- What volume of a 0.100 M solution of NaOH is needed to completely neutralize 50.0 mL of a 0.100 M H3PO4 solution?
- What volume of a 0.150 M NaOH solution is required to completely neutralize 50.0 mL of a 0.150 M H3PO4 solution?
- Calculate the volume (in mL) of a 1.420 M NaOH solution required to titrate 25.00 mL of a 1.500 M H3PO4 solution.
- Calculate the volume (in mL) of a 1.450 M NaOH solution required to titrate 25.00 mL of a 1.800 M H3PO4 solution.
- Calculate the volume (in mL) of a 1.350 M NaOH solution required to titrate 25.0 mL of a 1.500 M H3PO4 solution.
- Calculate the volume, in milliliters, of a 0.204 M solution of NaOH that will completely neutralize 3.71 mL of a 1.32 M solution of HNO3. Express the volume in milliliters to three significant figures.
- Calculate the volume of 0.125 M HNO_3 required to neutralize 25.0 mL of 0.250 M NaOH. \\ a. 25.0 mL b. 50.0 mL c. 12.5 mL d. 75.0 mL e. none of these
- What volume of 0.502 M NaOH solution would be required to neutralize 27.2 mL of 0.491 M HNO3 solution?
- Determine the molarity of a NaOH solution when each of the following amounts of acid neutralizes 25.0 mL of the NaOH solution. (a) 20.0 mL of 0.250 M HNO3 (b) 5.00 mL of 0.500 M H2SO4 (c) 23.2 mL
- Calculate the volume of a 1.420 M NaOH solution required to titrate 33.55 mL of a 1.500 M H_3PO_4 solution.
- Calculate the volume of a 1.420 M NaOH solution required to titrate 31.95 mL of a 1.500 M H3PO4 solution.
- Calculate the volume of a 1.420 M NaOH solution required to titrate 25.00 mL of a 1.500 M H_3PO_4 solution.
- Calculate the volume of a 1.420 M NaOH solution required to titrate 30.80 mL of a 1.500 M H_3PO_4 solution.
- What volume of 0.150 HNO3 solution is needed to neutralize 25.0 ml of 0.103 M NaOH?
- How many mL of a 0.10 M NaOH solution are needed to neutralize 15 mL of a 0.20 M H_3PO_4 solution?
- How many mL of a 0.10 M NaOH solution are needed to neutralize 15 mL of 0.20 M H3PO4 solution?
- How many mL of a 0.10 M NaOH solution are needed to neutralize 15 mL of a 0.20 M H3PO4 solution?
- How many mL of a 0.10 M NaOH solution is needed to neutralize 15 mL of 0.20 M H3PO4 solution?
- How many mL of 0.500 M NaOH are necessary to neutralize 20.0 mL of each of the following acids? a) 0.150 M HNO3 b) 0.250 M H2SO4 c) 0.450 M H3PO4
- A 14.3-mL sample of an H3PO4 solution is titrated with a 1.16 M NaOH solution. The neutralization reaction is complete when 34.6 mL of NaOH is added. What is the concentration of the H3PO4 solution (in M)?
- Calculate the volume of 0.730 M NaOH solution needed to completely neutralize 58.9 mL of a 0.700 M solution of the monoprotic acid HBr. __________ mL NaOH
- How many mL of a 0.10 M NaOH solution are needed to neutralize 15 mL of 0.20 M H3PO4?
- If exactly 5.0 mL of HNO3 will neutralize 15 mL of 2.0 M NaOH, what is the molarity of the HNO3 solution?
- If 23.6 ml of 0.200 m NaOH is required to neutralize 10.00 ml of a H_3PO_4 solution , what is the concentration of the phosphoric acid solution?
- Calculate the volume (ml) of a 0.215 M KOH solution that will completely neutralize each of the following: a) 2.50 ml of a 0.825 M H_2SO_4 solution. b) 18.5 ml of a 0.560 M HNO_3 solution.
- 3 mL of 0.15 M solution of NaOH was added in 10 mL of 0.05 M solution of H3PO4. Calculate the concentration of HPO42- ions.(pKas of phosphoric acid = 2.15; 7.2; 12.3).The 3 mL of 0.15 M solution of NaOH was added in 10 mL of 0.05 Msolution of H3PO4. Calcu
- Calculate the volume of 2 M solution of KOH that is required to neutralize 30.0 mL of a 1.00 M solution of HNO3.
- Calculate the volume of 2.00 M solution of KOH that is required to neutralize 30.0 mL of 1.00 M solution of HNO3.
- Calculate the volume of 2.00 M solution of KOH that is required to neutralize 30.0 mL of 1.00 M solution of HNO_3.
- A solution of 0.24 M NaOH is used to titrate 50.0 mL of a 0.0224 M H_3PO_4 solution. What volume, in milliliters, of the NaOH solution is required? H_3PO_2(aq) + 3NaOH(aq) rightarrow 3H_2O(l) + Na_3PO
- A solution of 0.190 M NaOH is used to titrate 53.5 mL of a 0.0324 M H_3PO_4 solution. What volume, in milliliters, of the NaOH solution is required? H_3PO_4(aq)+3NaOH(aq)\to 3H_2O(l)+Na_3PO_4(aq)
- Calculate the volume, in milliliters, of a 0.290 M LiOH solution that will completely neutralize each of the following: a. 40.0 mL of a 0.130 M H_3PO_4 solution. b. 24.5 mL of a 0.535 M H_2SO_4 soluti
- Determine the molarity of a NaOH solution when each of the following amounts of acid neutralizes 25.0 mL of the NaOH solution. (a) 10.0 mL of 0.250 M HNO_3 (b) 20.0 mL of 0.500 M H_2SO_4 (c) 25.0 mL of 1.00 M HCl (d) 5.00 mL of 0.100 M H_3PO_4.
- What volume of 0.750 M NaOH solution would be required to neutralize completely 100 mL of 0.250 M H_3PO_4 solution? 3NaOH + H_3PO_4 \longrightarrow Na_3PO_4 + 3H_2O
- What is the molarity of a NaOH solution if 21.3 mL of the NaOH solution is neutralized by 10.4 mL of 6.10 M H_3PO_4?
- How many mL of 0.500 M NaOH would neutralize 25.00 mL of 0.100 M H3PO4?
- How many milliliters of 0.100 M NaOH is needed to completely neutralize 25.0 mL of 0.250 M H3PO4?
- If a solution of 0.105 M NaOH is used to titrate 50.0 mL of a 0.0224 M H_3PO_4 solution, what volume of NaOH solution in mL is required?
- If a solution of 0.105 M NaOH is used to titrate 50.0 mL of a 0.0224 M H3PO4 solution, what volume of NaOH solution in mL is required?
- Determine the molarity of a NaOH solution when each of the following amounts of acid neutralizes 25.0 mL of the NaOH solution. (a) 20.0 mL of 0.250 M HNO_3 (b) 5.00 mL of 0.500 M H_2SO_4 (c) 23.2 mL of 1.00 M HCl (d) 5.00 mL of 0.100 M H_3PO_4.
- How many milliliters of 0.105 M NaOH are required to neutralize exactly 14.2 mL of 0.141 M H3PO4?
- How many milliliters of 0.150 M NaOH are required to completely neutralize 7.00 mL of 0.300 M H3PO4?
- What volume of 0.101 M HNO3 is required to neutralize 12.7 mL of 0.501 M NaOH?
- Calculate the volume (in Liters) of a 1.700 M NaOH solution that is needed to neutralize completely a 15.0 mL of a 1.000 M H2SO4 solution.
- What is the molarity of a solution of H_3PO_4 if 11.1 mL is neutralized by 33.2 mL of 0.161 M NaOH?
- 1) What volume of 0.1M H2SO4 solution is needed to neutralize 40 mL of 0.2M NaOH solution? 2) If 25 mL of 0.2 M H3PO4 solution is needed to neutrailize 60 mL of Ba(OH)2, then what is the molarity of
- Determine the volume in milliliters of a 0.188 M NaOH solution needed to neutralize a 275 mL solution of 0.125 M HCl and 0.250 M H2SO4.
- Calculate the volume of 0.340-M NaOH solution needed to completely neutralize 88.6 mL of a 0.870-M solution of the monoprotic acid HBr.
- Calculate the volume of a 0.810 M NaOH solution needed to completely neutralize 10.9 mL of a 0.840 M solution of the monoprotic acid HBr.
- How many milliliters of a 0.610 M NaOH solution are needed to completely neutralize 25.0 mL of a 0.356 M phosphoric acid solution?
- What volume of a 1.25 M NaOH solution is required to neutralize 13.3 mL of a 0.139 M phosphoric acid solution?
- Calculate the volume (in liters) of a 1.500 M NaOH solution that is needed to neutralize completely a 15.0 mL of a 0.8000 M HCl solution.
- Calculate the concentration of acid or base remaining in solution when 10.7 mL of 0.211 M HNO_3 are added to 16.3 mL of 0.258 M NaOH.
- Calculate the volume in mL of a 0.150 M NaOH solution needed to neutralize 25.0 mL of a 0.288 M HCl solution.
- How many millilitres of 0.100 M NaOH are needed to completely neutralize 25.0 mL of 0.250 M H_3PO_4? A. 62.5 mL B. 125 mL C. 31.3 mL D. 188 mL E. 78.1 mL.
- Determine the volume in mL of a 0.254 M NaOH solution needed to neutralize a 275 mL solution of 0.169 M HCl and 0.388 M H2SO4.
- Calculate the volume (in mL) of a 1.320 M sodium hydroxide solution required to completely neutralize 25.00 mL of a 1.500 M phosphoric acid solution.
- What volume (in mL) of a 0.188 M solution in Ca(OH)2 should be used to neutralize 26.2 mL of a 0.364 M solution in H3PO4.
- What volume (in mL) of a solution of 0.160 M Ca(OH)2 must we use to neutralize 29.0 mL of a solution of 0.337 M H3PO4?
- What volume (in mL) of a 0.185 M solution of Ca(OH)2 should be used to neutralize 28.1 mL of a 0.312 M solution of H3PO4?
- If 33.0 mL of 0.002 M aqueous H_3PO_4 is required to neutralize 28.0 mL of an aqueous solution of NaOH, determine the molarity of the NaOH solution.
- How many mL of 0.175 M H3PO4 are needed to neutralize 15.00 mL of 0.33 M NaOH?
- Calculate the volume of 0.025 M Ca(OH)_2 solution which can neutralise 100 mL of 0.0001 M H_3PO_4.
- What volume of a 0.50 M KOH solution is needed to neutralize completely each of the following? i) 10.0 mL of a 0.30 M HCl solution ii) 15.0 mL of a 0.25 M H_3PO_4 solution
- Calculate the molarity of a phosphoric acid solution if 34.21 mL of a 0.043 M sodium hydroxide solution neutralizes 25.00 mL of the acid solution.
- A 25.0 mL sample of H3PO4 requires 50.0 mL of 1.50 M NaOH for complete neutralization. What is the molarity of the acid?
- A solution of 0.25 M NaOH is used to neutralize 25.0 mL of H3PO4 solution. If 33.0 mL of NaOH is required to reach the endpoint, what is the molarity of the H3PO4? a) 0.042 M b) 0.50 M c) 3.78 M d) 1.26 M e) 0.11 M
- How many mL of 0.100 M NaOH are required to neutralize (or titrate) 25.0 mL of 0.15 M H_3PO_4?
- How many mL of 0.200 M NaOH are required to completely neutralize 5.00 mL of 0.100 M H3PO4?
- What volume (in mL) of a 0.175 M solution of Ca(OH)_2 should be used to neutralize 22.8 mL of a 0.353 M H_3PO_4 solution?
- What volume (in mL) of a solution of 0.183 M Ca(OH)2 must be used to neutralize 28.7 mL of a 0.385 M H3PO4 solution?
- Calculate the volume of 2.503 N HNO_3 added to 100 mL of HCl in order to prepare a 1.1251 N acid solution from the following data: 58.96 mL NaOH will neutralize 2.521g of potassium tetroxalate and 45.
- Calculate the volume (in mL) of 0.100 M H3PO4 required to neutralize 30.0 mL of 0.050 M Ca(OH)2.
- Calculate the volume (mL) of 0.100 M H3PO4 required to neutralize 25.0 mL of 0.010 M Ca(OH)2.
- Calculate the volume of 0.850-M NaOH solution needed to completely neutralize 25.8 mL of a 0.370-M solution of the monoprotic acid HCl.
- How many mL of a 0.610 M NaOH solution are needed to completely neutralize 25.0 mL of a 0.356 M phosphoric acid solution?
- How do I calculate the volume (in mL) of 1.55 M phosphoric acid needed to neutralize 35.0 mL of 2.30 M NaOH. Using three significant figures in my answer?
- What is the concentration of a HNO_3 solution if 10.0 mL of the solution is neutralized by 3.6 mL of a 0.20 M NaOH solution?
- What is the concentration of a HNO3 solution if 10.0 mL of the solution is neutralized by 3.6 mL of a 0.20 M NaOH solution?
- Calculate the volume (in milliliters) of 0.271 M HCl required to neutralize 36.2 mL of 0.259 M NaOH solution.
- Calculate the volume (in milliliters) of 0.119 M H2SO4 required to neutralize 36.2 mL of 0.259 M NaOH solution.
- Calculate the volume of 0.5 mol/L NaOH necessary to neutralize 300 mL of 0.2 M HCl.
- What volume of a 0.025 M H3PO4 solution is required to neutralize 25 mL of a 0.030 M Ca(OH)2 solution?
- What volume in mL of a 0.0992 M NaOH solution is required to reach the endpoint in the complete titration of a 15.0 mL sample of 0.107 M H_3PO_4? Determine if each of the following substances is acidic, basic, or neutral. Also, calculate the H_3O^+ and OH
- Calculate the volume, in milliliters, of a 0.204 M solution of NaOH that will completely neutralize 6.00 mL of a 3.09 M solution of HCl. Express the volume in milliliters to three significant figures.
- In the lab, you set up a titration experiment with 30.0 mL of 0.100 M H3PO4 solution in a flask and 0.120 M NaOH in the buret. Determine the volume (in mL) of NaOH solution needed to neutralize the acid. (Hint: Write and balance the equation for neutraliz
- What volume of 5.0 M HNO_3 is required to neutralize 2500 cm^3 of a 2.0 M NaOH solution?
- What volume of 0.5M HNO_3 is required to neutralize 25 cm^3 of a 0.2M NaOH solution?
- What volume (in mL) of a 0.120 M Ca(OH)2 solution is needed to neutralize 23.7 mL of a 0.387 M H3PO4 solution?
- What is the molarity of a solution that contains 0.978 g of H3PO4 in 185 mL of solution? How many milliliters of this solution could be completely neutralized by 11.58 mL of 0.454 M NaOH?
- What volume (in mL) of 0.0992 M NaOH solution is required to reach the endpoint in the complete titration of a 15.0 mL sample of 0.107 M H3PO4?
- Calculate the volume of 0.0321 M NaOH that will be required to neutralize 25.00 mL of a 0.0399 M hydrochloric acid solution.
- If it took 320 mL of an HNO3 solution to neutralize 490 mL of a 2.4 M KOH solution, then what was the molarity of the HNO3 solution?
- What volume of a 0.442 M NaOH solution is needed to neutralize 65.0 mL of a 0.296 M solution of HNO 3 ? a. 87.1 mL b. 21.8 mL c. 174 mL d. 43.5 mL e. 8.71 mL f. None of the above
- Determine the molarity of a NaOH solution when each of the following amounts of acid neutralizes 25.0 mL of the NaOH solution. (a) 10.0 mL of 0.250 M HNO3M (b) 20.0 mL of 0.500 M H2SO4M (c) 25.0 mL of
- What volume (L) of 0.250 M HNO_3 is required to neutralize a solution prepared by dissolving 17.5 g of NaOH in 350 mL of water?
- What volume (L) of 0.250 M HNO3 is required to neutralize a solution prepared by dissolving 17.5 g of NaOH in 350 mL of water?