Question

A 15.00 mL sample of nitric acid, HNO3, requires 0.655 g of barium hydroxide, Ba(OH)2 for...

A 15.00 mL sample of nitric acid, HNO3, requires 0.655 g of barium hydroxide, Ba(OH)2 for titration to the equivalence point. What is the concentration of the nitric acid?

                  2 HNO3(aq) + Ba(OH)2(aq) → Ba(NO3)2(aq) + 2 H2O(l)

0 0
Add a comment Improve this question Transcribed image text
Answer #1

21+ Nozcas +13 aCOH)2 → BaCMOs), + 2H30 de Cays O can, (l). mol cut or BacoH?=17134 g. 0.655g or BaoH = 0.6559 -0.0038 de 171

Add a comment
Know the answer?
Add Answer to:
A 15.00 mL sample of nitric acid, HNO3, requires 0.655 g of barium hydroxide, Ba(OH)2 for...
Your Answer:

Post as a guest

Your Name:

What's your source?

Earn Coins

Coins can be redeemed for fabulous gifts.

Not the answer you're looking for? Ask your own homework help question. Our experts will answer your question WITHIN MINUTES for Free.
Similar Homework Help Questions
  • 1. if 15.27 mL of 0.250 M solution of barium hydroxide is required to reach the...

    1. if 15.27 mL of 0.250 M solution of barium hydroxide is required to reach the equivalence point in a titration of 20.00 mL of nitric acid, what is the concentration of the acid? The equation for the reaction is 2 HNO3 + Ba(OH)2 --> 2 H2O + 2 NO3- + Ba2+ 2. For the reaction: HCOOH + OH- --> HCOO- + H2O If 24.60 mL of base is required to reach the equivalence point of this titration, what volume...

  • A 14.50 mL sample of nitric acid (HNO3) is titrated to the end point by the...

    A 14.50 mL sample of nitric acid (HNO3) is titrated to the end point by the addition of 10.45 mL of a 1.525 M solution of barium hydroxide (Ba(OH)2). What is the molarity of the nitric acid solution? (Balanced equation: 2HNO3 + Ba(OH)2 = Ba(NO3)2 + 2 H20)

  • Consider a 0.586 M aqueous solution of barium hydroxide- Ba(OH)2 (aq)

    Consider a 0.586 M aqueous solution of barium hydroxide- Ba(OH)2 (aq)1. How many grams Ba(OH)2 are dissolved in 0.191 dL of 0.586 M Ba(OH)2 (aq)2. How many individual hydroxide ions (OH-1) are found in 13.4 mL of 0.586 M Ba(OH)2 (aq)3. What volume in L of 0.586 M Ba(OH)2 (aq) contains 0.466 OUNCES of Ba(OH)2 dissolved in it?4. If 16.0 mL of water are added to the 31.5 mL of 0.586 M Ba(OH)2 what is the new solutions molarity?5. Suppose...

  • q10 Choose the correct, balanced chemical equation for the following neutralization reaction: nitric acid reacts with...

    q10 Choose the correct, balanced chemical equation for the following neutralization reaction: nitric acid reacts with aqueous barium hydroxide to form aqueous barium nitrate and water O HNO3 + BaOH + BaNO3 + H2O • 2 HNO3(aq) + Ba(OH)2(aq) - Ba(NO3)2(aq) + 2 H2O(1) HNO3(aq) + Ba(OH)2(aq) – Ba(NO3)2(aq) + H2O(1)

  • When aqueous solutions of nitric acid and barium hydroxide are mixed, the following reaction occurs 2HNO,...

    When aqueous solutions of nitric acid and barium hydroxide are mixed, the following reaction occurs 2HNO, + Ba(OH), Ba(NO3)2 + 2 H2O If 25.6 ml. of a 5.39x102 M Ba(OH), solution are required to react with 18.9 mL of HNO, what is the molarity of the HNO, solution? Give your answer to three significant figures. MHNO,

  • a barium hydroxide solution is prepared by dissolving 1.74 g of Ba(OH)2 in water to make...

    a barium hydroxide solution is prepared by dissolving 1.74 g of Ba(OH)2 in water to make 58.3 mL of solution. what is the concentration of the solution in units of molarity? the barium hydroxide solution is used to titrate a perchloric acid solution of unknown concentration. write a balanced chemical equation to represent the reaction between barium hydroxide and perchloric acid. if 25.1 mL of the barium hydroxide solution was needed to neutralize a 2.05 mL aliquot of the perchloric...

  • A barium hydroxide solution is prepared by dissolving 3.15 g of Ba(OH)2 in water to make...

    A barium hydroxide solution is prepared by dissolving 3.15 g of Ba(OH)2 in water to make 27.4 mL of solution. What is the concentration of the solution in units of molarity? concentration: M? If 30.0 mL of the barium hydroxide solution was needed to neutralize a 4.21 mL aliquot of the perchloric acid solution, what is the concentration of the acid? concentration:

  • A chemist needs to determine the concentration of a solution of nitric acid, HNO3. She puts...

    A chemist needs to determine the concentration of a solution of nitric acid, HNO3. She puts 875 mLof the acid in a flask along with a few drops of indicator. She then slowly adds 0.200 MBa(OH)2 to the flask until the solution turns pink, indicating the equivalence point of the titration. She notes that 145 mL of Ba(OH)2 was needed to reach the equivalence point. Solution map In this titration, the concentration of base is known and can be used...

  • Question 10 10 pts Choose the correct, balanced chemical equation for the following neutralization reaction: nitric...

    Question 10 10 pts Choose the correct, balanced chemical equation for the following neutralization reaction: nitric acid reacts with aqueous barium hydroxide to form aqueous barium nitrate and water HNO3 + BaOH - BaNO3 + H2O 2 HNO3(aq) + Ba(OH)2(aq) - Ba(NO3)2(aq) + 2 H20(1) HNO3(aq) + Ba(OH)2(aq) + Ba(NO3)2(aq) + H2O(1)

  • A chemist needs to determine the concentration of a solution of nitric acid, HNO3. She puts...

    A chemist needs to determine the concentration of a solution of nitric acid, HNO3. She puts 905 mL of the acid in a flask along with a few drops of indicator. She then slowly adds 0.600 M Ba(OH)2 to the flask until the solution turns pink, indicating the equivalence point of the titration. She notes that 205 mL of Ba(OH)2 was needed to reach the equivalence point. a) How many moles of Ba(OH)2 are present in 205 mL of 0.600...

ADVERTISEMENT
Free Homework Help App
Download From Google Play
Scan Your Homework
to Get Instant Free Answers
Need Online Homework Help?
Ask a Question
Get Answers For Free
Most questions answered within 3 hours.
ADVERTISEMENT
ADVERTISEMENT
ADVERTISEMENT