A 100.0-mL buffer solution is 0.175 M in HClO and 0.150 M in NaClO.
A) What is the initial pH of this solution?
Express your answer using two decimal places.
B) What is the pH after addition of 150.0 mg of HBr?
Express your answer using two decimal places.
C) What is the pH after addition of 85.0 mg of NaOH?
Express your answer using two decimal places.
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A 100.0-mL buffer solution is 0.175 M in HClO and 0.150 M in NaClO. A) What...
22. A 100.0-ml buffer solution is 0.175 M in HCIO and 0.150 M in Nacio. a. What is the initial pH of this solution? b. What is the pH after addition of 150.0 mg of HBr?! c. What is the pH after addition of 85.0 mg of NaOH?
A 100.0 mL buffer solution is 0.175 M in HCIO and 0.150 M in NaCIO. What is the initial pH of this solution? Express your answer using two decimal places. ACO Submit Request Answer Part B What is the pH after addition of 1500 mg of HBr? Express your answer using two decimal places. Yol AXC og
1.) A buffer solution is 0.175 M in HClO and 0.150 M in NaClO. What happens after addition of HBr? A)The amount of ClO- will increase B)The amount of HClO will increase C)The amounts of these components will stay the same D)The amount of HClO will decrease 2.) A 1L buffer solution is 0.175 M in HClO and 0.150 M in NaClO. What is the pH after addition of 0.10 mol HBr? pKa = 7.53 A)6.79 B)7.53 C)8.27 D)9.23
1000 ml buffer is 0.175 M of HClO and 0.150M in HClO and the pH is 7.47 1. what is the pH when 10.00ml of 2.0M NaOH is added? 2. if you add 150mg of HBr what will be the new pH (assume no volume change). Molar mass of HBr is 80.91g/mol sorry HClO it is 0.175 M and for NaClO it is 0.150
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A buffer solution is made that is 0.319 M in HClO and 0.319 M in NaClO . (1) If Ka for HClO is 3.50×10-8, what is the pH of the buffer solution? (2) Write the net ionic equation for the reaction that occurs when 0.089 mol KOH is added to 1.00 L of the buffer solution.
Consider the following two buffers: (i) 10.0 mL of a buffer that contains 0.10 M HClO and 0.10 M NaClO (ii) 10.0mL of a buffer that contains 0.050 M HClO and 0.10 M NaClO b.) 8 drops of 1.0 M NaOH (aq) is added to each of these buffers. 1.)Give the balanced net-ionic equation for the reaction that occurs when the NaOH (aq) is added. 2.)For which buffer (i or ii) does the pH change the greatest amount when the...
1. You are titrating a 100.0 mL solution of 0.050 M HBrwith a 0.150 M solution of KOH. What will be the pH after the addition of 25.0 mL KOH? 2. You titrate 250 mL of 0.250 M acetic acid (Ka= 1.8 x 10-5) with 50.0 mL of 0.350 M NaOH. What is the pH of this solution? 3. For the titration in question 2, what would be the Kaof an ideal indicator.