I have a question about acid/base problem. the problem says. What is the pH of a...
I have a question about acid/base problem.
the problem says. What is the pH of a mixture of 0.042 M of NaH2PH4 and 0.058 M of Na2HP04? Note that pKa is 6.86
So it gave the solution and said it's pH = 6.86 + log 0.058/0.042 and then it said how do we know which one is the acid or base? Just look who has more H+.
SO this is where I'm confused because the Henderson Hasselbalch equation is pH = pKa + log Base/Acid and the note above said how do we know which is the base or acid by who has the most H+. Well, isn't a solution that has MORE hydrogen ions, isn't that a base? which would be the 0.042 ?? and the one with less hydrogen ions is an acid which is 0.058 ?? But the answer flipped those 2 part of the Henderson equation. shouldn't it be pH = 6.86 + log 0.042/0.058 ???
Please let me know and explain in great detail! Thank you! and any tips that you might have to work these type of problems out. I have an exam next Friday. Thanks!
Homework Answers
Add Answer to:
I have a question about acid/base problem.
the problem says. What is the pH of a...
The pH of a buffer is calculated by using the Henderson-Hasselbalch equation: pH=pKa +log[Base]/[Acid] Part A: What...
The pH of a buffer is calculated by using the Henderson-Hasselbalch equation: pH=pKa +log[Base]/[Acid] Part A: What is the pH of a buffer prepared by adding 0.809mol of the weak acid HA to 0.406mol of NaA in 2.00 L of solution? The dissociation constant Ka of HA is 5.66
Base/Acid Ratios in Buffers Just as pH is the negative logarithm of [H3O+], pKa is the...
Base/Acid Ratios in Buffers Just as pH is the negative logarithm of [H3O+], pKa is the negative logarithm of Ka, pKa=?logKa The Henderson-Hasselbalch equation is used to calculate the pH of buffer solutions: pH=pKa+log[base][acid] Notice that the pH of a buffer has a value close to the pKa of the acid, differing only by the logarithm of the concentration ratio [base]/[acid]. Part A Acetic acid has a Ka of 1.8
Resources Ex Give Up? What concentrations of acetic acid (pka = 4.76) and acetate would be...
Resources Ex Give Up? What concentrations of acetic acid (pka = 4.76) and acetate would be required to prepare a 0.15 M buffer solution at pH 4.92 Note that the concentration, the pH, or both values may differ from that in the first question. Strategy 1. Rearrange the Henderson-Hasselbalch equation to solve for the ratio of base (acetate) to acid (acetic acid), [ A HA). 2. Use the mole fraction of acetate to calculate the concentration of acetate. 3. Calculate...
What concentrations of acetic acid (pKa 4.76) and acetate would be required to prepare a 0.10...
What concentrations of acetic acid (pKa 4.76) and acetate would be required to prepare a 0.10 M buffer solution at pH 4.5? Note that the concentration and/or pH value may differ from that in the first question. STRATEGY 1. Rearrange the Henderson-Hasselbalch equation to solve for the ratio of base (acetate) to acid (acetic 2. Use the mole fraction of acetate to calculate the concentration of acetate. 3. Calculate the concentration of acetic acid Step 1: Rearrange the Henderson Hasselbalch...
what concentration of acetic acid (pka=4.76) and acetate would be required to prepare a .15 M...
what concentration of acetic acid (pka=4.76) and acetate would be
required to prepare a .15 M buffer solution at pH 5.0?
What concentrations of acetic acid (pKa = 4.76) and acetate would be required to prepare a 0.15 M buffer solution at pH 5.07 Note that the concentration, the pH, or both values may differ from that in the first question. Strategy 1. Rearrange the Henderson-Hasselbalch equation to solve for the ratio of base (acetate) to acid (acetic acid). (AVHA)....
QUESTION 5 (A ) pH = pka + log THA) Use the Henderson-Hasselbalch equation to solve...
QUESTION 5 (A ) pH = pka + log THA) Use the Henderson-Hasselbalch equation to solve the following problem: A solution of hypoiodous acid (HIO, pka = 10.50) has a measured pH of 11.24. What is the % ionization of the hypoiodous acid? 58.71% 15.40% 84.60% O 73.44%
Need help on questions 1-3 Henderson-Hasselbalch: pH=pka + Log( [base]/(acid] ) 1. The value of Ka...
Need help on questions 1-3
Henderson-Hasselbalch: pH=pka + Log( [base]/(acid] ) 1. The value of Ka of nitrous acid (HNO2) is 4.6 x 104 M. Calculate the pH and the concentration of [H3O+] in a 0.02M aqueous solution of HNO2(aq). 2. Label conjugate acid-base pairs: HNO2(aq) + H2O → H30* + NO2 (aq) 3. What will happen to the reaction equilibrium if we increase the pressure in the reaction vessel? H2(g) + 12(e) → 2 HI(g)
The Henderson-Hasselbalch equation connects pH to pk, by relating pH to the relative amounts of the...
The Henderson-Hasselbalch equation connects pH to pk, by relating pH to the relative amounts of the acid and conjugate base. The equation is: [A], pH = pKa + log [HA]' A. If you had an acetic acid solution at pH 4.75, what would the ratio of acetic acid to acetate 4. be? (Сн,соо у сн, соон) - ([CH3CO0¯], [CH3COOH], B. What if the solution pH was 4.27? C. What about pH 5.05?
Please explain Buffers: Solutions That Resist pH Change. Below you will find questions. 1. Define buffer...
Please explain Buffers: Solutions That Resist pH Change. Below you will find questions. 1. Define buffer and know that a buffer typically consists of a weak acid and its conjugate base. 2. Know that the common ion effect is an example of Le Châtelier’s principle. 3. Calculate the pH of a buffer solution starting with initial concentrations of weak acid and its conjugate base. 4. Use the Henderson-Hasselbalch equation to calculate the pH of a buffer solution from the pKa...
* 2. Calculate the pH of a buffer solution that is 0.050 M in benzoic acid...
* 2. Calculate the pH of a buffer solution that is 0.050 M in benzoic acid (HC,H,O,) and 0.150 M in sodium benzoate (NaC,H,O,). For benzoic acid, K = 6.5 X10. Use the Henderson-Hasselbalch approach. (6 points) Equation: HC,H,02(aq) + H20(1) = H,0*(aq) + C,H,O, (aq) Hint: pH = pKa + log base] (acid]
Resources Ex Give Up? What concentrations of acetic acid (pka = 4.76) and acetate would be required to prepare a 0.15 M buffer solution at pH 4.92 Note that the concentration, the pH, or both values may differ from that in the first question. Strategy 1. Rearrange the Henderson-Hasselbalch equation to solve for the ratio of base (acetate) to acid (acetic acid), [ A HA). 2. Use the mole fraction of acetate to calculate the concentration of acetate. 3. Calculate...
What concentrations of acetic acid (pKa 4.76) and acetate would be required to prepare a 0.10 M buffer solution at pH 4.5? Note that the concentration and/or pH value may differ from that in the first question. STRATEGY 1. Rearrange the Henderson-Hasselbalch equation to solve for the ratio of base (acetate) to acid (acetic 2. Use the mole fraction of acetate to calculate the concentration of acetate. 3. Calculate the concentration of acetic acid Step 1: Rearrange the Henderson Hasselbalch...
what concentration of acetic acid (pka=4.76) and acetate would be
required to prepare a .15 M buffer solution at pH 5.0?
What concentrations of acetic acid (pKa = 4.76) and acetate would be required to prepare a 0.15 M buffer solution at pH 5.07 Note that the concentration, the pH, or both values may differ from that in the first question. Strategy 1. Rearrange the Henderson-Hasselbalch equation to solve for the ratio of base (acetate) to acid (acetic acid). (AVHA)....
QUESTION 5 (A ) pH = pka + log THA) Use the Henderson-Hasselbalch equation to solve the following problem: A solution of hypoiodous acid (HIO, pka = 10.50) has a measured pH of 11.24. What is the % ionization of the hypoiodous acid? 58.71% 15.40% 84.60% O 73.44%
Need help on questions 1-3
Henderson-Hasselbalch: pH=pka + Log( [base]/(acid] ) 1. The value of Ka of nitrous acid (HNO2) is 4.6 x 104 M. Calculate the pH and the concentration of [H3O+] in a 0.02M aqueous solution of HNO2(aq). 2. Label conjugate acid-base pairs: HNO2(aq) + H2O → H30* + NO2 (aq) 3. What will happen to the reaction equilibrium if we increase the pressure in the reaction vessel? H2(g) + 12(e) → 2 HI(g)
The Henderson-Hasselbalch equation connects pH to pk, by relating pH to the relative amounts of the acid and conjugate base. The equation is: [A], pH = pKa + log [HA]' A. If you had an acetic acid solution at pH 4.75, what would the ratio of acetic acid to acetate 4. be? (Сн,соо у сн, соон) - ([CH3CO0¯], [CH3COOH], B. What if the solution pH was 4.27? C. What about pH 5.05?
* 2. Calculate the pH of a buffer solution that is 0.050 M in benzoic acid (HC,H,O,) and 0.150 M in sodium benzoate (NaC,H,O,). For benzoic acid, K = 6.5 X10. Use the Henderson-Hasselbalch approach. (6 points) Equation: HC,H,02(aq) + H20(1) = H,0*(aq) + C,H,O, (aq) Hint: pH = pKa + log base] (acid]
Most questions answered within 3 hours.
-
Please show calculations/work
Marcello is filing as single and has 2018 taxable income of
$730,000 which...
asked 26 minutes ago -
"Mini Case Study - Haley Roberts "
Haley Roberts is quite proud that she has grown...
asked 24 minutes ago -
do the following on a UNIX command line, if applicable vi editor
may be used
Consider...
asked 34 minutes ago -
My App is a small but growing start-up
that sees demand for several of its apps...
asked 40 minutes ago -
1. The catabolic Activation Protein (CAP) is a regulatory
protein associated with several carbohydrate metabolism operons...
asked 54 minutes ago -
A car company was preparing their marketing materials for the
2020 version of their popular SUV....
asked 1 hour ago -
7.13 LAB: Word frequencies (lists)
Write a program that first reads in the name of an...
asked 1 hour ago -
how
much is the energy of co2 per mole increased when it absorbs
infrared radiation with...
asked 1 hour ago -
which reagent CAN convert the glucose ring into a linear
chain?
a) HCl (aq)
b) H2CrO4...
asked 1 hour ago -
USING MATLAB.
Design a program which uses a for…end loop to add 10 to
a variable...
asked 1 hour ago -
The raft is made up of
ten 18 cm diameter logs, each with a length of...
asked 1 hour ago -
Batteries are one of the major imports of the US from China.
Batteries cost 10 Yuan...
asked 1 hour ago