150. (1) 10mLÁ¿Í²; (2)250mLÈÝÁ¿Æ¿; (3) 25mLÒÆÒº¹Ü; (4) 10mLÎüÁ¿¹Ü; (5) 50mL¼î
ʽµÎ¶¨¹Ü 151. µÍ
152. ¸ß£»µÍ£»ÒÆÒº¹Ü¡¢µÎ¶¨¹Ü
153. NH3-NH4Cl; ¸õºÚT; NaOH; ¸ÆÖ¸Ê¾¼Á
154. 0.0001; 0.01; NaOH±ê×¼ÈÜÒº; HAcÈÜÒº; È¥Àë×ÓË® 155. EDTAÈÜÒº; ÕôÁóË®; ¿óȪˮ
156. 5C2O42-+2MnO4-+16H+ ¡ú 10CO2+2Mn2+ +8H2O; Ï¡ÁòËá; Mn2+; 70~80¡æ; KMnO4×ÔÉí;
ÎÞ; ×Ϻì
157. Ag+; AgBr+2S2O32-¡ú[Ag(S2O3)2]3-+Br-
Èý¡¢¼ÆËãÌâ
1. ¡ßn (KI)=12¡Á10-3¡Á0.10=1.2¡Á10-3mol n (AgNO3)=100¡Á10-3¡Á0.005=0.5¡Á10-3mol
KI¹ýÁ¿£¬ÐγÉAgI¸ºÐÔÈܽº
¡à½ºÍŽṹ£º[£¨AgI£©m¡¤nI-¡¤£¨n-x£©K+]x-¡¤x K+ ¾Û³ÁÖµ£º MgCl2 £¼ K3[Fe£¨CN£©6]
2. ¸ù¾ÝÏ¡ÈÜÒºµÄÒÀÊýÐÔ ¦¤Tf=Kfb Á½ÈÜÒºÔÚͬһζȽá±ù£¬±íÃ÷ËüÃǵÄŨ¶ÈÏàͬ£¬
¼´£º(1.50/60)/(200/1000)=(42.5/M)/(1000/1000) ËùÒÔ£ºM=340 ¦È
3. ¦¤r Hm=(-235.3)£(-277.6)=42.3KJ/mol
¦È
¦¤rSm=282£161=121 J/(mol¡¤K)
¦È¦È¦È
(1) ¦¤r Gm=¦¤r Hm£T¦¤rSm=42.3£298¡Á121¡Á10-3=6.24 KJ/mol>0
¡à298KºÍ±ê׼̬Ï£¬C2H5OH£¨l£©²»ÄÜ×Ô·¢µØ±ä³ÉC2H5OH£¨g£©¡£
¦È¦È¦È
(2) ¦¤r Gm=¦¤r Hm£T¦¤rSm=42.3£373¡Á121¡Á10-3=-2.83 KJ/mol <0
¡à373KºÍ±ê׼̬Ï£¬C2H5OH£¨l£©ÄÜ×Ô·¢µØ±ä³ÉC2H5OH£¨g£©¡£ (3) ·Ðµãʱ£¬Æø-Һƽºâ
¦È¦È¦È
¦¤r Gm=¦¤r Hm£T¦¤rSm=0
¦È¦È
·ÐµãT=¦¤r Hm/¦¤rSm=42.3/(121¡Á10-3)=349.6K 4.
¦¤H= 3¡Á(-110.5) ¡ª (-822.2)=490.7 kJ¡¤mol-1
¦È
¦¤S=2¡Á27.28+3¡Á197.56 ¡ª 90 ¡ª 3¡Á5.74=540.02 J¡¤K-1¡¤mol-1
¦È¦È
T>¦¤H/¦¤S=49.07¡Á103/540.02=909 K
¦È¦È¦È
5. (1) ¦¤rGm=2¦¤fGm(NO2)£2¦¤fGm(NO)=2¡Á51.3£2¡Á86.6=-70.6 kJ/mol<0
ËùÒÔ·´Ó¦Äܹ»×Ô·¢½øÐС£
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(2) ¸ù¾Ý¦¤rGm=-RT©RK K=exp(-¦¤rGm/RT)=exp[-(-70.6)¡Á103/8.314¡Á298]
12
=2.4¡Á10
¦È
6. (1) ¦¤rHm=2¡Á(-46.19)£3¡Á0£0= -92.38kJ/mol
¦È
¦¤rSm=2¡Á192.0£3¡Á130.6£191.5= -199.3J¡¤mol-1¡¤K-1
¦È¦È¦È
¦¤rGm=¦¤rHm£T¦¤rSm=(-92.38)£298¡Á(-199.3)¡Á10-3=-32.99 kJ/mol
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(2) ¸ù¾Ý¦¤rGm=-RT©RK
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©RK=-¦¤rGm/ (RT)= -(-32.99) ¡Á103/(8.314¡Á298)=13.3154 ¦È
K=6.06¡Á105 ¦È
Fe2O3+3C2Fe+3CO7. x y
x- 0.99 y y(1-0.99) 0.99y 0.99y
Kc=C(CO)C(H2O)/[C(CO2)C(H2)]=0.992y2/[(x-0.99 y) ¡Á0.01y]
=0.992¡Áy2/(0.01xy-0.99¡Á0.01y2 )=0.992/[0.01(x/y)-0.99¡Á0.01] ¡à x/y=99 8. (1)
Q=ÁÚ²î/¼«²î=(0.5086-0.5064)/(0.5086-0.5042)=0.50 CO2(g)+H2(g)CO(g)+H2O(g) (2) X = 0.5059 (3) S= [¡Æ(Xi ¨C X )2 / (n-1)]1/2 =0.00155 CV=S/ X¡Á100% =0.00155/0.5059¡Á100%=0.3% (4) ¦Ì0.95= X ¡Àts /¡Ìn =0.5059¡À2.57¡Á0.00155/¡Ì6 = 0.5059¡À0.0016 9. K=KspKf=C ([Ag(NH3)2])¡¤C(Br)/C(NH3)=0.0100¡Á0.0100/ C2(NH3) =5.2¡Á10-13¡Á2.51¡Á107 C(NH3)=2.77mol/L C0>2.77+0.0100¡Á2=2.79mol/L £¨°±Ë®µÄ³õʼŨ¶ÈÖÁÉÙÊÇ2.79mol/L£© 10. »º³åÈÜÒº C(H+)=Ka C(HAc)/C(Ac-) pH=pKa-lg [C(HAc)/C(Ac-)] 5= -lg(2¡Á10-5)-lg[5.0¡ÁV/(125¡Á1.0)] V=12.5mL 11. ¹ýÁ¿µÄHAÓë·´Ó¦Éú³ÉµÄNaA¹¹³É»º³åÈÜÒº ¦È ¦È AgBr+2NH3[Ag(NH + )]+32+Br--2 pH=pKa+lg[C(A-)/C(HA)]=6 12. H2CO3ÓëHCO3¹¹³É»º³åÈÜÒº ¡ª¡ª [H+]=Ka1 ¡¤C(H2CO3)/ C(HCO3) 10-7.40=4.3¡Á10-7¡¤C(H2CO3)/ C(HCO3) ¡ª C(H2CO3)/ C(HCO3)=10-7.40/(4.3¡Á10-7)=3.9/43=0.09 ¡ª HAH++A-H2CO3H++HCO-313. NH3ÓëNH4Cl¹¹³É»º³åÈÜÒº C(OH-)=Kb¡¤C(NH3)/C(NH4+) 10-4=1.8¡Á10-5¡Á15¡Á300¡Á10-3/ (m/53.5) M=43g Bi2S3(s)2Bi3+NH3¡¤H2ONH4++OH-+3S2-3s2s14. 23+32-235 Ksp=C(Bi)C(S)=(2s)(3s)=108s=1.08¡Á10-98 s=10-20mol/L 15. ¢Ù +-5C(H)=¡ÌKaC=¡Ì1.8¡Á10¡Á0.10=1.34¡Á10-3mol/L pH=2.87 ¢Ú C(OH-)=¡ÌKbC=¡Ì1.8¡Á10-5¡Á0.10 =1.34¡Á10-3mol/L pH=11.13 ¢Û +-8C(H)=¡ÌKa1C=¡Ì9¡Á10¡Á0.10=9.5¡Á10-5mol/L pH=4.01 ¢Ü --14-11 C(OH)=¡Ì(Kw/Ka2)¡¤C =¡Ì10¡Á0.10 /(5.6¡Á10)=4.2¡Á10-3mol/L pH=11.63 ¢Ý HAcÓëNaAc¹¹³É»º³åÈÜÒº pH=pKa£lg[C(HAc)/C(Ac-)]=4.74 16. 0.50/2 0.10/2 0.02/2 ¸ù¾Ý¶àÖØÆ½ºâÔÀí K=Kb2/Ksp=(1.8¡Á10-5 )2/(5¡Á10-12)=64.8=C2(NH4+)/[C(Mg2+)C2(NH3)] Q=(0.02/2)2/ [(0.50/2)¡Á(0.10/2)2]=0.16 ²»²úÉúMg(OH)2³Áµíʱ£¬ Q=[(0.02+m/53.5)/2]2/ [(0.50/2)¡Á(0.10/2)2]¡ÝK=64.8 m¡Ý20.46g 17. ¦È2+2+ K=C(H)/[C(Cu)C(H2S)]=Ka1Ka2/Ksp(CuS)=1.0¡Á10-7¡Á1.0¡Á10-14/(8.5¡Á10-45)=1.2¡Á1024 Cu2+HAcH++Ac-NH3¡¤H2ONH4++OH--H2SH++HSCO32-+H2OHCO-3+OH-Mg2++H2NH3¡¤2OMg(OH)2+2NH+4+H2SCuS+2H+ ÉèCu2+Íêȫת»¯ÎªCuS³Áµíʱ£¬C(H+)=2¡Á0.1=0.2mol/L ¦È K=1.2¡Á1024=0.22/ [C(Cu2+)¡Á0.1] C(Cu2+)=3.3¡Á10-25mol/L Òò´Ë£¬Cu2+³Áµí¼«ÎªÍêÈ« K=C(H)/[C(Fe)C(H2S)]=Ka1Ka2/Ksp(FeS)=1.0¡Á10-7¡Á1.0¡Á10-14/(3.7¡Á10-19)=2.7¡Á10-3 ¦È ´Ëʱ£¬Q=0.22/(0.1¡Á0.1)=4> K ·´Ó¦ÄæÏò×Ô·¢£¬²»ÄÜÉú³ÉFeS³Áµí¡£ 18. (1) H3PO4 NaH2PO4(·Ó̪) NaH2PO4(¼×»ù³ÈÖÕµã) V1 ¡ý NaOH HCl ¡üV2 Na2HPO4( ·Ó̪ÖÕµã) Na2HPO4(¼Ó¼×»ù³È) ÒòΪC (HCl)=C (NaOH) V1=48.36mL V2=33.72mL ËùÒÔ, »ìºÏҺΪH3PO4 ºÍNaH2PO4. (2) NaOHµÎ¶¨H3PO4ÐèÌå»ý2(V1-V2) NaOHµÎ¶¨NaH2PO4ÐèÌå»ýV1-2(V1-V2)=2V2-V1 NaH2PO4(g/mL) = CNaOH¡¤ (2V2-V1)¡¤M(NaH2PO4)¡Á10-3/VÊÔ =1.000¡Á(2¡Á33.72-48.36)¡Á120.0¡Á10-3/25.00=0.09158 H3PO4(g/mL) = C (NaOH)¡¤ 2(V1-V2)¡¤M (1/2 H3PO4)¡Á10-3/VÊÔ =1.000¡Á2¡Á(48.36-33.72)¡Á98.00/2¡Á10-3/25.00=0.05739 19. V1>V2 NaOH+HCl¡úNaCl+H2O (·Ó̪) Na2CO3+HCl¡úNaCl+NaHCO3 (·Ó̪) NaHCO3+HCl¡úNaCl+H2O+CO2 (¼×»ù³È) ËùÒÔ: »ìºÏ¼îµÄ×é³ÉΪNaOHºÍNa2CO3 CV2=ms¡¤WNa2CO3% / M (Na2CO3)=n(Na2CO3) WNa2CO3%= CV2¡¤M (Na2CO3) / ms=(0.3000¡Á10.00¡Á10-3¡Á106.0/0.6000)¡Á100%=53.00% CV1=n (NaOH)+n (Na2CO3)= ms¡¤WNaOH% / M (NaOH)+CV2 WNaOH%= (CV1-CV2)¡¤M (NaOH)/ ms =(0.3000¡Á(25.00-10.00)¡Á10-3¡Á40.0/0.6000)¡Á100%=30.00% 20. ¼×»ù³È±äɫʱ ·Ó̪±äɫʱ Na3PO4 Na2HPO4 Na3PO4 HCl ¡ý V1 HCl ¡ý V2 NaH2PO4 Na2HPO4 ¡ßV1>V2 ¡à¿ÉÒÔÈ·¶¨»ìºÏÎïµÄ×é³ÉÊÇNa3PO4ºÍNa2HPO4 ¼×»ù³È Na3PO4 + 2HCl ¡ú NaH2PO4 + 2NaCl Na2HPO4 + HCl ¡ú NaH2PO4 + NaCl CV1=2 ms¦Ø(Na3PO4)/M(Na3PO4) + ms¦Ø(Na2HPO4) /M(Na2HPO4) ·Ó̪ Na3PO4 + HCl ¡ú Na2HPO4 + NaCl CV2= ms¦Ø(Na3PO4)/M(Na3PO4) ¡à¦Ø(Na3PO4)= CV2 M (Na3PO4)/ ms=0.5000¡Á6.00¡Á10-3¡Á163.94/1.0000=49.18% ¦Ø(Na2HPO4)= [(CV1£2 CV2)/ms]¡ÁM(Na2HPO4) =[(0.5000¡Á16.00¡Á£2¡Á0.5000¡Á6.00)¡Á10-3¡Á141.96]/1.0000=21.29% CV1=ms¡¤¦Ø(NaOH) / M(NaOH) + ms¡¤¦Ø(Na2CO3)/ M (Na2CO3) ¼×»ù³È±äÉ« NaHCO3 + HCl ¡ú NaCl + H2O + CO2 CV2=n(NaHCO3)=n(Na2CO3)= ms¡¤¦Ø(Na2CO3)/ M (Na2CO3) ¡à¦Ø(Na2CO3)= CV2 ¡¤M (Na2CO3)/ ms=0.3000¡Á12.02¡Á10-3¡Á105.99 / 05985=63.86% ¦Ø(NaOH)= (CV1£CV2)¡ÁM(NaOH) / ms =0.3000¡Á(24.08£12.02)¡Á10-3¡Á40.01/05985=24.19% 22. NH4HCO3+HCl¡úNH4Cl+H2O+CO2 CV=ms¦Ø/M ¦Ø=CV M /ms=0.1000¡Á20.00¡Á10-3¡Á79.06/0.2000=79.06% 23. NaOH ¡ú NaCl Na2CO3 ¡ú NaHCO3 ¡ú NaCl+CO2+H2O V1 V2 ¦ÈFe2++H2S2+FeS+2H+2+ CV1/1000=ms¡ÁNaOH%/40.00 + ms¡ÁNa2CO3%/106.0 ¼´ 0.1500¡Á40.00/1000=0.4380¡ÁNaOH%/40.00 + 0.4380¡Á£¨1- NaOH%£©/106.0 ¡à NaOH%=27.40%£¬ Na2CO3%=72.60% ÓÖ¡ß CV2/1000= ms¡ÁNa2CO3%/106.0 ¡à V2= ms¡ÁNa2CO3%¡Á1000/(CM) =0.4380¡Á72.60%¡Á1000/£¨0.1500¡Á106.0£©=20.00mL 24. ¼ÆÁ¿µãʱµÃµ½0.1000mol/L NaA£¬ ÈÜÒºÏÔ¼îÐÔ£¬C(OH)=¡Ì(Kw/Ka)¡¤C=¡Ì(10-14/1¡Á10-5)¡Á 0.1=10-5 pH=9.0 ËùÒÔӦѡ·Ó̪×÷ָʾ¼Á£¬ÖÕµãÑÕÉ«ÓÉÎÞÉ«µ½ºìÉ« 25. H2C2O4+2NaOH ¡ú Na2C2O4+2H2O m/M=(1/2)CV C=2m/MV=2¡Á0.1237/126.07¡Á20.00¡Á10-3=0.1010mol/L 26. V1 ·Ó̪±äÉ«£ºHCl+Na2CO3¡úNaHCO3+NaCl (CV) HCl,1=n(Na2CO3)=ms¦Ø(Na2CO3)/M(Na2CO3) ¦Ø(Na2CO3)= (CV) HCl¡ÁM(Na2CO3)/ ms =0.1010¡Á12.00¡Á10-3¡Á106.00/[1.6236¡Á(25.00250.00)]=79.13% ¼×»ù³È±äÉ«£ºHCl+Na2CO3¡úCO2+NaCl+ H2O HCl+NaHCO3¡úCO2+NaCl+ H2O (CV) HCl,2=n(Na2CO3)+n(NaHCO3)= (CV) HCl,1+ ms¦Ø(NaHCO3)/M(NaHCO3) ¦Ø(NaHCO3)={[ (CV) HCl,2£(CV) HCl,1]/ ms}¡ÁM(NaHCO3) -3 ={0.1010¡Á(15.00£12.00)¡Á10/[1.6236¡Á(25.00/250.00)]}¡Á84.00=15.68% - A-+H2OHA+OH-+32327. ƽºâʱ x 2x 1¡ªx Kf,£¨Ag(NH3)2+£©=1.6¡Á107= (1¡ªx)/x¡¤ (2x)2 x=2.5¡Á10-3 mol/L Ôò£ºC(Ag+)=2.5¡Á10-3mol/L C(NH3)= 5.0¡Á10-3mol/L C([Ag(NH3)2]+)=1mol/L ¼ÓÈëÏõËáºó Ag+2NH[Ag(NH)]+Ag++2NH3[Ag(NH32)]+ 0.99 y 0.01 Kf,£¨Ag(NH3)2+£©=1.6¡Á107=0.01/ 0.99¡ÁC2 (NH3) C(NH3)=2.5¡Á10-5 mol/L Ka (NH4)=Kw / Kb(NH3)=C(NH3) C(H+)/C(NH4+)=2.5¡Á10-5¡¤C(H+) /2.0=10-14/1.8¡Á10-5 C(H+)=4.4¡Á10-5mol/L pH=4.35 28. ¼ÓÈ백ˮºó C(Ag+)=0.10¡Á50¡Á10-3 / (100¡Á10-3)=0.05mol/l C(NH3)=(30¡Á0.90¡Á18%/17)/ (100¡Á10-3) = 2.86 mol/L [Ag(NH3)2]+Ag++2NH3 ƽºâʱ x 2.86+2x 0.05£x KÎÈ=7.7¡Á107=(0.05£x)/[x¡¤(2.86+2x)2]¡Ö0.05/ x¡¤2.862 x¡Ö7.9¡Á10-11 mol/L C(Ag+)=7.9¡Á10-11 mol/L C([Ag(NH3)2]+)=0.05 mol/L C(NH3)=2.86 mol/L 29. ÓÉ EDTA+Ca2+ ¡ú Cu (EDTA) µÃ£ºn (EDTA)=n (Ca) ¼´£ºC(EDTA)¡¤V (EDTA)=m (CaO)/ M (CaO) ËùÒÔ C(EDTA)=26.00¡Á0.001000/(25.26¡Á56.08¡Á10-3)=0.01835mol/L Co3++EDTA ¡ú Co(EDTA) n(EDTA)=n(Co)=1/2 n(K) ¼´n (K)=2n (EDTA) ËùÒÔ K%=[2C(EDTA)¡¤V(EDTA)¡¤M (K)¡Á10-3/ W]¡Á100% NH+4H++NH3