Calculate the approximate pH of an aqueous solution of H2S , 0.05 M, and H3PO4, 0.21 M at 25°C. (Note: consider one decimal place for the pH answer.)
pKa H2S/HS- = 7.02, pKa HS-/S2- = 13.99
pKaH3PO4/ H2PO4- =2.15, pKaH2PO4-/HPO42-=7.15, pKa HPO42-/ PO43- =12.38
Calculate the approximate pH of an aqueous solution of H2S , 0.05 M, and H3PO4, 0.21...
Calculate the approximate pH of an aqueous solution of H2S , 0.05 M, and H3PO4, 0.21 M at 25°C. (Note: consider one decimal place for the pH answer.) pKa H2S/HS- = 7.02, pKa HS-/S2- = 13.99 pKaH3PO4/ H2PO4- =2.15, pKaH2PO4-/HPO42-=7.15, pKa HPO42-/ PO43- =12.38
Calculate the approximate pH of an aqueous solution of a mixture of CH3COOH, 0.27 M, and CH3COONa, 0.15 M, at 25°C. (Note: consider one decimal place for the pH answer.) pKa = 4.76.
Calculate the approximate pH of an aqueous solution of sodium carbonate Na2CO3 , 0.28 M, at 25°C. (Note: consider one decimal place for the pH answer.) pKa H2CO3 /HCO3− = 6.35, pKa HCO3- /CO32-= 10.30
Calculate the approximate pH of an aqueous solution of ammonium chloride, NH4Cl , 0.03 M, and sodium acetate, CH3COONa, 0.12 M at 25°C. (Note: consider one decimal place for the pH answer.) pKa NH4+/NH3 = 9.24 pKa CH3COOH/CH3COO- = 4.76
Calculate the approximate pH of an aqueous solution of ammonia, NH3 , 0.11 M, and sodium hydroxide, NaOH, 0.16 M at 25°C. (Note: consider one decimal place for the pH answer.) pKa NH4+/NH3 = 9.24
Calculate the pH and the equilibrium concentrations of H2PO4-, HPO42- and PO43- in a 0.0287 M aqueous phosphoric acid solution. For H3PO4, Ka1 = 7.5×10-3, Ka2 = 6.2×10-8, and Ka3 = 3.6×10-13 pH = [H2PO4-] = [HPO42-] = [PO43-] =
the pH and [s2-1 in a 0.21 M H2S solution. Assume Ka,-1.0x10-7. Ka,-1.0x10-19. Calculate pH [s2-] Calculate the pH of a 3.9x10 M solution of H2SO4 Need Help? Read it
the pH and [s2-1 in a 0.21 M H2S solution. Assume Ka,-1.0x10-7. Ka,-1.0x10-19. Calculate pH [s2-] Calculate the pH of a 3.9x10 M solution of H2SO4 Need Help? Read it
3) Calculate the pH of a solution by mixing 50.0 mL of 0.200 M Na2HPO4 with 20.0 mL 0.0400 M NaH2PO4. (Hint: Buffer solution. Use Henderson-Hasselbalch equation) H3PO4 5 H+ + H2PO4 pkı = 2.1 H2PO4 5 H+ + HPO42- pK2 = 7.2 HPO42- 5 H+ PO43- pK3 = 12.3
An aqueous solution of 0.100 M phosphoric acid (12.0 mL) is
titrated with 0.400 M KOH as shown below. phosphoric acid has three
pKas: 2.148, 7.198, 12.375.
H3PO4(aq) + OH-(aq)
H2PO4-(aq) +
H2O(l)
H2PO4-(aq) + OH-(aq)
HPO42-(aq) +
H2O(l)
HPO42-(aq) + OH-(aq)
PO43-(aq) + H2O(l)
Calculate the pH of phosphoric acid solution before any KOH has
been added.
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What is the pH of a 0.05 M HPO42- solution? (Ka1 (H3PO4) = 7.11 x 10-3, (Ka2 (H3PO4) = 6.32 x 10-8, (Ka3 (H3PO4) = 4.5 x 10-13)