Calculate the ratio of NaF to HF required to create a buffer with pH=3.95
Calculate the mole ratio of NaF to HF required to create a buffer with pH=4.10. Ka(HF)=6.3×10−4 Express your answer using two significant figures. [NaF][HF] = ??
84. Calculate the ratio of NaF to HF needed in order to generate a buffer system with a pH 3.74. the Ka value for hydrofluoric acetic acid is 3.5x10-4
1.) 160.0 mL of 0.24 M HF with 225.0 mL of 0.30 M NaF find pH 2.) 180.0 mL of 0.11 M C2H5NH2 with 275.0 mL of 0.21 M C2H5NH3Cl find pH 3.) Calculate the ratio of NaF to HF required to create a buffer with pH = 3.80. find [NaF][HF] = - My answer was 2.45 and it said it was wrong
1. Calculate the pH of a buffer: a) consisting of 0.600M HF and 0.750M NaF b) after the addition of 0.560g KOH (a strong base) to 1.00L of the buffer solution in part (a).
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
150.0 mL of 0.23 M HF with 220.0 mL of 0.31 M NaF Calculate the pH of the solution that results from each of the following mixtures. also, I'm so confused how you get the pKa..... can someone explain that part
A.) Calculate the pH of 0.100 L of a buffer solution that is 0.29M in HF (Ka = 3.5 x 10-4 ) and 0.55M in NaF. B.) What is the pH after adding 0.004mol of HNO3 to the buffer described in Part A? C.) What is the pH after adding 0.002mol of KOH to the buffer described in Part A?
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?
a. Calculate the pH of 0.100 L of a buffer solution that is 0.29M in HF (Ka = 3.5 x 10-4 ) and 0.55M in NaF. - What is the pH after adding 0.004mol of HNO3 to the buffer described in Part A -What is the pH after adding 0.002mol of KOH to the buffer described in Part A?
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?