Please help me with this question. Thank you Calculate the pH of each solution. A solution...
O Attempt 7 Calculate the pH of each solution. A solution containing 0.0243 M maleic acid and 0.034 M disodium maleate. The K, values for maleic acid are 1.20 x 10 (Kal) and 5.37 x 10 (Ka2) pH| 1.93 A solution containing 0.0360M succinic acid and 0.023 M potassium hydrogen succinate. The K, values for succinic acid are 6.21 x 10 (Kal) and 2.31 x 10 (K2) 9- = Hd 10
part 1 is wrong Calculate the pH of each solution. A solution containing 0.0243 M maleic acid and 0.034 M disodium maleate. The K, values for maleic acid are 1.20 x 10-?(K) and 5.37 x 10 (K2). pH = 2.00 A solution containing 0.0360 M succinic acid and 0.023 M potassium hydrogen succinate. The K, values for succinic acid are 6.21 x 10" (K1) and 2.31 x 10 "(K), pH = 4.01
Calculate the pH of each solution. A solution containing 0.0320 M maleic acid and 0.046 M disodium maleate. The Ka values for maleic acid are 1.20 x 10 (Ka1) and 5.37 x 10-7 (Ka2) 1.8 pH A solution containing 0.0306 M succinic acid and 0.019 M potassium hydrogen succinate. The Ka values for succinic acid are 6.21 x 105 (Kal) and 2.31 x 10 (Ka2) pH
Calculate the pH of each solution. A solution containing 0.0345 M0.0345 M maleic acid and 0.047 M0.047 M disodium maleate. The ?aKa values for maleic acid are 1.20×10−2 (?a1)1.20×10−2 (Ka1) and 5.37×10−7 (?a2).5.37×10−7 (Ka2). pH= A solution containing 0.0320 M0.0320 M succinic acid and 0.018 M0.018 M potassium hydrogen succinate. The ?aKa values for succinic acid are 6.21×10−5 (?a1)6.21×10−5 (Ka1) and 2.31×10−6 (?a2).2.31×10−6 (Ka2). pH=
Calculate the pH at the equivalence point for the titration of 0.110 M methylamine (CHNH,) with 0.110 M HCI. The K methylamine is 5.0 x 10 of pH = 5.83 5.83 is wrong Calculate the pH of each solution. A solution containing 0.0243 M maleic acid and 0.034 M disodium maleate. The 1.20 x 10-(Kx1) and 5.37 x 10' (K). values for maleic acid are pll 2.00 A solution containing 0.0300 M succinic acid and 0.023 M potassium hydrogen succinate....
whats wrong i alwwys get like a 4.16 but never is correct can you solve this and explain how Question 11 of 16 > Attempt 6 Calculate the pH of each solution. A solution containing 0.0286 M maleic acid and 0.040 M disodium maleate. The K, values for maleic acid are 1.20 x 10-2 (Ka) and 5.37 x 10-7 (K) 2.29 pH A solution containing 0.0295 M succinic acid and 0.018 M potassium hydrogen succinate. The K, values for succinic...
1.20 x 10- and Ka - 5.37 x 10-Determine the pll of 0.259 M Maleic acid (H.CH,0,) is a diri acid with K maleic acid ( HC,H,O,) solution. < Hint pH = Because Kal is much larger than Kas you can assume that very little of the intermediate species (HC, H, 0) will dissociate and that the diprotic acid acts like a monoprotie acid.
Please explain in steps 3.) Calculate the concentrations of all molecular and ionic species and the pH in aqueous solutions that have the following formal compositions: a) 0.05 M acetic acid + 0.1 M sodium acetate; b) 0.2 M boric acid + 0.05 M sodium borate (pK, of boric acid = 9.24); c) 0.5 M hydrochloric acid. Some representative K, and pK, values: Acid Oxalic acid H3PO4 Formic acid Succinic acid Oxalate Acetic acid Succinate H2CO3 H2PO4 NH4+ HCO3 Piperidine...
7. (a) Define pH (b) Calculate the pH of 0.030 M Ba(OH)2 solution (c) Calculate the pH of a solution containing 0.085 M nitrous acid alone and a solution containing 0.085 M nitrous acid and 0.10 M potassium nitrite (KNO2). K, for HNO2 = 4.5 x 10-
If you need anymore values let me know! Thanks so much for your help! Rew Topics Rolorences Use the References to access important values if needed for this question A buffer solution contains 0.335 M NaHCO3 and 0.250 M K CO3. Determine the pH change when 0.097 mol NaOH is added to 1.00 L of the buffer pH after addition - pH before addition = pH change Use the References to access important values if needed for this question. A...