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What is the pH of 1L of buffer made from 0.6M HF and 0.54M NaF (pKa of HF = 3.45)? If 0.01M HCl is added (disregard change in volume), what is the new pH? If 0.01M NaOH had been added instead?
Consider a buffer solution formed from 0.1M HF and 0.1M NaF. 1) If a compound containing H+ is added to this solution, what direction will the equilibrium reaction shift and what species is consumed in the process? 2) Why is it necessary, then, to have NaF as well as HF present for this solution to behave as a buffer?
1. Write the balanced chemical equation for the reaction of HF with water. Type your answer here. 2. What is the pH and concentration of F– in a 0.100M solution of HF? Ans. pH = 2.10 Insert your work image here. 3. Write the balanced chemical equation for the dissolution of NaF in water. Type your answer here. 4. What would happen if the equilibrium [F–] that you calculated in 2 was changed by adding 0.00500 moles of solid NaF to...
The pK, value for HF is 3.14. Would a buffer prepared from HF and NaF with a pH of 5.14 be considered to be an effective buffer? A buffer in which the mole ratio of NaF to HF is 1.7 has a pH of 3.36. Would this buffer solution have a greater capacity for added acid (H307) or added base (OH)? added acid added base Submit Answer Retry Entire Group 9 more group attempts remaining
What is the pH of a 1.0 L buffer made with 0.300 mol of HF (Ka = 6.8 × 10⁻⁴) and 0.200 mol of NaF to which 0.100 mol of NaOH were added?
A buffer solution contains 1.0 M HF and 1.0 M NaF. The ka for HF is 7.2x10-5. 0.10 moles of HCl are added to 1 liter of the buffer. The pH of the resulting solution is a) 4.05 b) 4.14 c) 4.23 d) 4.74
A 360.0 −mL buffer solution is 0.150 M in HF and 0.150 M in NaF. a) What mass of NaOH can this buffer neutralize before the pH rises above 4.00? = 1.6 b)If the same volume of the buffer were 0.370 M in HF and 0.370 M in NaF, what mass of NaOH could be handled before the pH rises above 4.00?
What is the pH of the buffer solution in question 2 (Recall the values were: 1.0 L buffer of 0.35 M hydrofluoric acid (HF, Ka = 3.5x10-4) and 0.68 M sodium fluoride (NaF)) after 0.031 moles NaOH are added?
What mass of KF must be added to 200 mL of 0.15 M HF to obtain a buffer with pH = 3.00? Xg Enter a number. a)What is the pH of a buffer made by mixing 75 mL of 0.1 M hydrocyanic acid (HCN) with 100 mL of 0.1 M NaCN at 25 °C? 9.43 b) What is the new pH if 2 mL of 1.0 M NaOH is added to the solution in part a? X How many grams...
A buffer is prepared by mixing 75.0 mL of 0.40 M aqueous HF and 25.0 mL of 0.80 M aqueous NaF. At 25oC, Ka = 3.5 x 10-4 for HF. SHOW WORK (a). (4 points) Calculate the pH of the buffer. (b). (4 points) Your instructor accidentally dropped the bottle containing the buffer in part (a) in a bucket of water, that initially contained 4.00 L of water. What is the pH of the resulting solution?