1£®Ð´³öÏÂÁÐÈÜÒºµÄÖÊ×ÓÌõ¼þʽ¡£
a£®c1 mol¡¤L-l NH3 + c2 mol¡¤L-l NH4Cl£» c£®c1 mol¡¤L-l)H3PO4 + c2 mol¡¤L-l HCOOH£» ½â£º
a. ¶ÔÓÚ¹²éîÌåϵ£¬ÓÉÓÚ¹¹³ÉÁË»º³åÈÜÒº£¬ËùÒÔ¿ÉÒÔ½«ÆäÊÓΪÓÉÇ¿ËᣨHClºÍÈõ¼î£¨NH3£©·´Ó¦¶øÀ´£¬ËùÒԲο¼Ë®×¼Ñ¡ÎªHCl, NH3ºÍH2O ÖÊ×ÓÌõ¼þʽΪ£º[ H+ ] + [NH4+] = [Cl-] + [OH-] »ò[ H+ ] + [NH4+] = c2 + [OH-]
c. Ö±½ÓÈ¡²Î¿¼Ë®Æ½£ºH3PO4 , HCOOH , H2O
ÖÊ×ÓÌõ¼þʽ£º[H+] = [H2PO4-] + 2[HPO42-] + 3[PO43-] + [HCOO-]+[OH-]
3£®¼ÆËãÏÂÁи÷ÈÜÒºµÄpH¡£ a£®0.050 mol¡¤L-l NaAc£» c£®0.10 mol¡¤L-l NH4CN£» e£®0.050 mol¡¤L-l°±»ùÒÒË᣻ g£®0.010 mol¡¤L-l H2O2Òº£»
i£®0.060 mol¡¤L-l HCIºÍ0.050 mol¡¤L-lÂÈÒÒËáÄÆ(ClCH2COONa)»ìºÏÈÜÒº¡£ ½â£º
a.¶ÔÓÚ´×Ëá¶øÑÔ£¬Kb = Kw / Ka = 5.6 ? 10-10
ӦΪcKb = 5.6 ? 10-10? 5 ?10-2 = 2.8 ? 10-11> 10Kw
c/Kb> 100 ¹ÊʹÓÃ×î¼òʽ£»
?105.6?10?0.05 = 5.29? 10-6 [OH] =
-
pH = 14 ¨C pOH = 8.72
c. NH4+ Ka¡¯ = 5.6 ? 10-10 HCN Ka = 6.2. ? 10-10 cKa¡¯ > 10Kw c > 10 Ka ÓɽüËƹ«Ê½¿ÉÒԵõ½£º
[H+] =
KaKa' =
6.2?5.6?10?20 = 5.89? 10-10
pH = 10 ¨C 0.77 = 9.23
e. °±»ùÒÒËáÒ»¶ËôÈ»ùÏÔËáÐÔ£¬Ò»¶Ë°±»ùÏÔ¼îÐÔ£¬Ka1 = 4.5? 10-3 , Ka2 = 2.5 ? 10-10
c/Ka2> 100 ÇÒc > 10 Ka1
ËùÒÔ[H] =
+
Ka1Ka2 = 4.2?2.5?10?13 = 1.06 ? 10-6
pH = 6-0.03 = 5.97
g. ¶ÔÓÚË«ÑõË®¶øÑÔ£¬Ka = 1.8 ? 10-12
cKa < 10Kw c/Ka> 100 ËùÒÔ¿ÉÒÔ¼ÆËãÇâÀë×ÓŨ¶È
[H+] =
cKa?Kw = 1.8?10?14?1?10?14 = 1.67 ? 10-7
pH = 7 ¨C 0.22 = 6.78
i. ÓÉÓÚClCH2COONa + HCl = ClCH2COOH + NaCl
ËùÒÔÔÈÜÒº¿ÉÒÔ¿´³É0.050mol/LµÄClCH2COOHºÍ0.010mo/LHClµÄ»ìºÏÈÜÒºÉèÓÐx mol/LµÄClCH2COOH·¢ÉúÀë½â£¬Ôò
ClCH2COO- + H+
ClCH2COOH
0.05-x x 0.01+x
(0.01?x)x ËùÒÔÓÐ0.05?x = Ka = 1.4 ? 10-3
½âµÃx = 4.4 ? 10-3mol/L
ÄÇô[H+] = 0.0144mol/L pH = -log [H+] = 1.84
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