Zn + X =ZnX H Cd CdI i H i X CdX

Sep 05, 2014

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Zn + X =ZnX H Cd CdI i H i X CdX. I -. åœ¨ pH ä¸º 5.5 æ—¶ä»¥ 2Ã—10 -2 molÂ·L -1 HEDTA æ»´å®šæµ“åº¦å‡ä¸º 2Ã—10 -2 molÂ·L -1 çš„ Zn 2+ ã€ Cd 2+ æ··åˆæ¶²ä¸çš„ Zn 2+ ï¼Œä»¥ KI æŽ©è”½ Cd 2+ ã€‚è®¡ç®—åŒ–å¦è®¡é‡ç‚¹æ—¶çš„ lg K ï‚¢(ZnX) , èƒ½å¦å‡†ç¡®æ»´å®š ? æŒ‡ç¤ºå‰‚æ˜¯ä»€ä¹ˆ ?[Zn 2+ ] ã€ [CdX] ã€âˆ‘ [CdI i ] å„æ˜¯å¤šå°‘ï¼Ÿ

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Zn + X =ZnX H Cd CdI i H i X CdX

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Zn + X =ZnX H Cd CdIi HiX CdX I- 在pH为5.5时以2×10-2 mol·L-1 HEDTA滴定浓度均为2×10-2 mol·L-1的Zn2+、Cd2+混合液中的Zn2+，以KI掩蔽Cd2+。计算化学计量点时的lgK(ZnX), 能否准确滴定?指示剂是什么?[Zn2+]、[CdX]、∑[CdIi] 各是多少？已知: lgK(ZnX)=14.5, lg(CdX)=13.0, lgX(H)=4.6, lgCd (I)=5.1
解: [Cd]= X(Cd)=1+10-7.1+13.0=105.9> X(H)=104.6 lg X=5.9 lgK(ZnX)=14.5-5.9=8.6>8, 能准确滴定, 指示剂:XO pZn=1/2(lgK +pc(Zn))=1/2(8.6+2.0)=5.3 [Zn2+]=10-5.3 mol/L,  Cd(I)={[Cd]+∑[CdIi]}/[Cd] ∑[CdIi] =105.1-7.1-10-7.1=10-2.0mol/L
∵X(Cd) > X(H) ∴[CdX]=[X]= 10-5.3mol/L [CdX]=[Cd][X]K(CdX)=10-7.1(10-5.3/105.9)1013.0=10-5.3mol/L [CdX]=105.9-11.2-10-11.2= 10-5.3mol/L