Question

1.0.15 M ammonium chloride is added to a 0.05 M solution of ammonia. How does the pH change? NHs(aq) + H2O(1) NH(aq) + OH(aq)

I need help with questions 1,3,4,5

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

d. NH3 + H2O NHACI À NHO + oH - NHet tei -> due to conimon. you effect, Concentration of Nyt o oh decreases , which result inТа» Nex 1 4. Te pri= pka :] answer Let 544, +bx & ve o< Awa на Ka. (A] Cent] . LIGAT we considering Laud] = (base? ILHAJ - [A

Add a comment
Know the answer?
Add Answer to:
I need help with questions 1,3,4,5 1.0.15 M ammonium chloride is added to a 0.05 M...
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
  • 5,6,7 5. An example of a Lewis acid which is NOT also acting as a HBronsted...

    5,6,7 5. An example of a Lewis acid which is NOT also acting as a HBronsted acid is (see species in bold) A. 2H20-H0'+OH B. HCI NaOH NaCl H20 C. BHs NHs->BHNH D. NHs H0NH+OH 6. On the diagram at the right of titration of a weak acid by a strong base, what is represented by the point A? A. the 50:50 bufler mixture B. the stoichiometric point C. mL added base D. the buffer zonc E. solution of strong...

  • I added everything thing. this is the lab question you need to solve. First assigned buffer...

    I added everything thing. this is the lab question you need to solve. First assigned buffer pH: 2.031 Second assigned buffer pH: 9.171 Available Buffer Systems (acid/ base) pka of Conjugate Acid 2.847 4.757 malonic acid/ monosodium malonate acetic acid/ sodium acetate ammonium chloride/ ammonia triethylammonium chloride/ triethylamine 9.244 10.715 1) Buffer system details: Given pH Name and volume conjugate acid Name and volume conjugate base 2) Calculations for preparation of high capacity buffer system. Introduction In this experiment, you...

  • If the Ka for HCIO, is 1,0x10, what is the Kb of CIO:? A. 1.0x1014 B....

    If the Ka for HCIO, is 1,0x10, what is the Kb of CIO:? A. 1.0x1014 B. 1.0x10 C. 1.0x1015 D. 1.0x10 2 Choose the list which, based on structure, puts the acids in the order of most acidic to least acidic. A. HF> HCI> HBr> III B. CCla-COOII> CCbl-COOI> CCIH-COOH> CH-coOfI C. 1ICIO>HCIO,> HCIO3> HCIO4 D. B(OH),> NII> H2O > HF Which of the following substances will produce a basic solution? A. MgCl B. Fe(NO) C. KI D. NaF 4....

  • 1. The following pictures represent solution at various points in the titration of a weak acid...

    1. The following pictures represent solution at various points in the titration of a weak acid with a strong base. HA + OH - HOH + A OH - -OH Which picture to the left corresponds to cach of the following points in the titration? before the addition of any NaOH at the equivalence point where only a salt remains which solution is a buffer? Multiple Choice 1. Barium hydroxide is slightly soluble in water, with a Kap of 5.00...

  • Strong base is dissolved in 765 mL of 0.400 M weak acid (Ka = 4.23 ×...

    Strong base is dissolved in 765 mL of 0.400 M weak acid (Ka = 4.23 × 10-5) to make a buffer with a pH of 4.19. Assume that the volume remains constant when the base is added. Strong base is dissolved in 765 mL of 0.400 M weak acid (Ka 4.23x 10) to make a buffer with a pH of 4.19. Assume that the volume remains constant when the base is added. HA(aq) + OH-(aq) → H2O()-A-(aq) Calculate the pKa...

  • need help with 6,7,8 thank you. 6. During the titration of a weak acid, at the...

    need help with 6,7,8 thank you. 6. During the titration of a weak acid, at the equilvalence point the pH will be: A. greater then 7.0 B. less than 7.0 C. = 7.0 7. What is the pH of a buffer made with 0.1 Macetic acid (pk. - 4.75) and 0.250 M sodium acetate? A. 3.22 B 7.25 C. 5.00 D. 8.46 E.5.15 8. What is the pH of 100 ml of a buffer made with 0.10 M each of...

  • help with these chemistry questions 1. Explain what happens to the concentration of H,O' ions in...

    help with these chemistry questions 1. Explain what happens to the concentration of H,O' ions in an acetic acid solution when solid sodium acetate is added. 2. Determine the pH and pH of a solution that is 0.5 M NaHSO4 and 0.25 M Na2SO4 3. When sodium nitrite is added to HNO2(aq) a) the equilibrium concentration of HCOOH(aq) decreases. b) the pH of the solution increases. c) the K increases. d) the pH of the solution does not change. e)...

  • A volume of 500.0 mL of 0.150 M NaOH is added to 615 mL of 0.250...

    A volume of 500.0 mL of 0.150 M NaOH is added to 615 mL of 0.250 M weak acid (Kg = 4.65 x 10-'). What is the pH of the resulting buffer? HA(aq) + OH(aq) — H,O(l) + A (aq) pH If a buffer solution is 0.230 M in a weak acid (K, = 9.0 x 10-) and 0.460 M in its conjugate base, what is the pH? pH =

  • Strong base is dissolved in 755 mL of 0.400 M weak acid (Kg = 4.71 x...

    Strong base is dissolved in 755 mL of 0.400 M weak acid (Kg = 4.71 x 10-5 M) to make a buffer with a pH of 4.10. Assume that the volume remains constant when the base is added. HA(aq) + OH(aq) + H20(1) + A (aq) Calculate the pK, value of the acid and determine the number of moles of acid initially present. pKa = moles of weak acid: mol HA Enter numeric value When the reaction is complete, what...

  • need help with this lab work for a chemistry experiment!!! volume of 0.10 M NaOH added...

    need help with this lab work for a chemistry experiment!!! volume of 0.10 M NaOH added to 50mL of the acid mixture: initial burette reading:0.1 mL Final burette reading: 32.3 mL volume of NaOH added: 32.2mL pH of optimal buffer: 4:66 pH Ka of unknown weak acid: _______ assigned pH of new buffer to make: 4.46 pH new buffer data: H+ needed: _____ Ka: H+ same as (Ka/H+) : ______ A-:[HWA] same as (Ka/H+) : _____ volume of A- volume...

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