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 approximate pH of an aqueous solution of ammonia, NH3 , 0.11 M, and sodium...
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 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 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 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 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
A buffer solution consists of 0.00300 M ammonia (NH3) and 0.00500 M ammonium chloride (NH4Cl). What is the change in pH when 0.00100 moles of NaOH are added to one litre of the solution without any change in volume? The pKa of NH4+ is 9.24.
An ammonia buffer solution contains 0.24 M NH4+ and 0.21 M NH3. The pka of ammonium is 9.24. What is the pH of the buffer? Answer:
Need help with these, please. 1).Calculate the approximate [OH-] and [NH4+] in a 0.11 M ammonia solution, NH3(aq). NH3(aq) + H2O(l) ↔ OH-(aq) + NH4+(aq). Kb = 1.75 x 10-5M. 2). Calculate the pH of 0.136 M phosphoric acid (H3PO4, a triprotic acid). Ka1 = 7.5 x 10-3, Ka2 = 6.2 x 10-8, and Ka3 = 4.8 x 10-13.
1. Calculate the approximate [OH-] and [NH4+] in a 0.40 M ammonia solution, NH3(aq). NH3(aq) + H2O(l) ↔ OH-(aq) + NH4+(aq). Kb = 1.75 x 10-5M. 2. Calculate the pH of 0.178 M ammonia. NH3(aq) + H2O(l) ↔ OH-(aq) + NH4+(aq) Kb = 1.75 x 10-5
A buffer solution contains a mixture of aqueous ammonia, NH3(aq), and ammonium chloride NH4Cl(aq). A small amount of sodium hydroxide solution, NaOH(aq) is added. Which of the following correctly describes the buffering action occurring in this solution on mixing? A. Hydroxide ions are removed by reaction with NH3(aq) to give NH4OH (aq) B. Sodium ions are removed by reaction with Cl- to give NaCl C. The presence of NH3 (aq) prevents the NaOH from dissociating into ions D. Hydroxide ions...