46£®Use the appropriate molecular orbital enerry diagram to write the electron configuration for
each of the following molecules or ions, calculate the bond order of each, and predict which would exist. (1) H2+, (2) He2, (3) He2+, (4) H2?, (5) H22?. Solution: (1) H2[(?1s)], the bond order is 0.5;
(2) He2[(?1s)2(??1s)2], the bond order is 0;
(3) He2+[(?1s)2(??1s)1], the bond order is 0.5;
?2?1
(4) H2 [(?1s)(?1s)], the bond order is 0.5; (5) H22? [(?1s)2(??1s)2], the bond order is 0; The (1), (3) and (4) would exist.
++
47£®Which of these species would you expect to be paramagnetic? (a) He2, (b) NO, (c) NO,
(d) N22+, (e) CO, (f) F2+, (g) O2.
Solution: The species to be paramagnetic are He2+, NO, F2+ and O2.
48£®The boiling points of HCl, HBr and HI increase with increasing molecular weight. Yet the
melting and boiling points of the sodium halides, NaCl, NaBr, and NaI, decrease with increasing formula weight. Explain why the trends opposite.
Solution: HCl, HBr and HI are all molecular crystal. There is a force in moleculars. The boiling
points of HCl, HBr and HI increase with increasing molecular weight because the force in moleculars increase with increasing molecular weight.
The melting and boiling points of the sodium halides, NaCl, NaBr, and NaI, decrease with
increasing formula weight, because the ionicity of NaCl, NaBr, and NaI decrease with increasing formula weight.
49£®For each of the following pairs indicate which substance is expected to be: (a) More covalent :
MgCl2 or BeCl2 CaCl2 or ZnCl2 CaCl2 or CdCl2 TiCl3 or TiCl4 SnCl2 or SnCl4 CdCl2 or CdI2 ZnO or ZnS NaF or CuCl FeCl2 or FeCl3
(b) higher melting point:
NaF or NaBr Al2O3 or Fe2O3 Na2O or CaO Solution: (a) More covalent :
MgCl2 < BeCl2 CaCl2 < ZnCl2 CaCl2 < CdCl2 TiCl3 < TiCl4 SnCl2 < SnCl4 CdCl2 < CdI2 ZnO < ZnS NaF < CuCl FeCl2 < FeCl3 (b) higher melting point:
NaF > NaBr Al2O3 > Fe2O3 Na2O < CaO
+
1
µÚ°ËÕÂÅäλ»¯ºÏÎïÓëÅäλµÎ¶¨
Ò»¡¢±¾ÕÂÒªÇóÕÆÎյĻù±¾¸ÅÄî
1¡¢ÖÐÐÄÀë×Ó£»2¡¢ÅäλÌ壻3¡¢ÅäλÔ×Ó£»4¡¢ÅäλÊý£»5¡¢ÄÚ¹ìÐÍÅäºÏÎ6¡¢Íâ¹ìÐÍÅäºÏÎ7¡¢Èõ³¡ÅäÌ壻8¡¢Ç¿³¡ÅäÌ壻9¡¢÷¡ºÏÎ10¡¢¶àºËÅäºÏÎ11¡¢Îȶ¨³£Êý£»12¡¢Öð¼¶Îȶ¨³£Êý£»13¡¢ÀÛ»ýÎȶ¨³£Êý£»14¡¢ÅäλµÎ¶¨·¨£»15¡¢ËáЧӦ£»16¡¢ËáЧӦϵÊý£»17¡¢Ö¸Ê¾¼ÁµÄ·â±ÕÏÖÏó£»18¡¢Ö¸Ê¾¼ÁµÄ½©»¯ÏÖÏó
¶þ¡¢±¾ÕÂÒªÇóÀí½âºÍÕÆÎյĻù±¾ÀíÂÛÔÀí
1¡¢Åäλ»¯ºÏÎï¼Û¼üÀíÂÛ£»2¡¢¾§Ì峡ÀíÂÛ£»3¡¢ÅäλµÎ¶¨ÔÀí£»4¡¢½ðÊôָʾ¼Á±äÉ«ÔÀí
Èý¡¢ÀýÌâÓëÏ°Ìâ
1£®Ð´³öÏÂÁÐÅäºÏÎïµÄÃû³Æ¡¢ÖÐÐÄÀë×Ó¼°Æä¼Û̬¡¢ÅäÀë×ӵĵçºÉ¡£ ½â£º
ÅäºÏÎï Ãû³Æ ÖÐÐÄÀë×Ó¼°¼Û̬ ÅäÀë×ÓµçºÉ
Na3[Ag(S2O3)2] [Cu(CN)4]3? [Co C13 (NH3)3] [Cr C1 (NH3)5]2+ Na2[SiF6] [Co(C2O4)3]3? [PtCl4 (NH3)2] [Zn(NH3)4](OH)2
¶þÁò´úÁòËá¸ùºÏÒø(I)ËáÄÆ
ËÄÇèºÏÍ(I)Àë×Ó ÈýÂÈÈý°±ºÏîÜ(III)
Ò»ÂÈÎå°±ºÏ¸õ(III) Àë×Ó Áù·úºÏ¹è(¢ô)ËáÄÆ
Èý²ÝËá¸ùºÏîÜ(III)Àë×Ó ËÄÂȶþ°±ºÏ²¬(IV) ÇâÑõ»¯ËÄ°±ºÏп(II)
Ag+ Cu+ Co3+ Cr3+ Si4+ Co3+ Pt4+ Zn2+
?3 ?3 0 +2 ?2 ?3 0 +2
2£®AgNO3ÄÜ´ÓPt(NH3)6C14ÈÜÒºÖн«ËùÓеÄÂȳÁµíΪAgCl£¬µ«ÔÚPt(NH3)3Cl4ÖнöÄܳÁµí
1/4µÄÂÈ¡£ÊÔ¸ù¾ÝÕâЩÊÂʵд³öÕâÁ½ÖÖÅäºÏÎïµÄ½á¹¹Ê½¡£ ½â£º(1) [Pt(NH3)6]Cl4 £» (2) [PtCl3(NH3)3]Cl £»
3£®ÒÑÖªÓÐÁ½ÖÖîܵÄÅäºÏÎËüÃǾßÓÐÏàͬµÄ·Ö×ÓʽCo(NH3)5BrSO4£¬Æä¼äµÄÇø±ðÔÚÓÚµÚÒ»
ÖÖÅäºÏÎïµÄÈÜÒºÖмÓÈëBaCl2ʱ²úÉúBaSO4³Áµí£¬µ«¼ÓAgNO3ʱ²»²úÉú³Áµí£»¶øµÚ¶þÖÖÅäºÏÎïÔòÓë´ËÏà·´¡£Ð´³öÕâÁ½ÖÖÅäºÏÎïµÄ»¯Ñ§Ê½£¬²¢Ö¸³öîܵÄÅäλÊýºÍÑõ»¯Êý¡£ ½â£º(1) [Co Br (NH3)5]SO4, îܵÄÅäλÊýΪ6£¬Ñõ»¯ÊýΪ+3£»
(2) [Co SO4 (NH3)5] Br£¬îܵÄÅäλÊýΪ6£¬Ñõ»¯ÊýΪ+3¡£
4£®¸ù¾ÝÅäºÏÎïµÄ¼Û¼üÀíÂÛ£¬Ö¸³öÏÂÁÐÅäÀë×ÓµÄÖÐÐÄÀë×ӵĵç×ÓÅŲ¼¡¢ÔÓ»¯¹ìµÀµÄÀàÐͺÍÅä
Àë×ӵĿռ乹ÐÍ¡£
2+?2+2?3+
[Mn(H2O)6] £» [Ag(CN)2] £» [Cd(NH3)4] £» [Ni(CN)4] £» [Co (NH3)6]¡£ ½â£º
ÅäºÏÎï ÖÐÐÄÀë×Ó µç×ÓÅŲ¼ ÔÓ»¯¹ìµÀÀàÐÍ ÅäÀë×ӿռ乹ÐÍ
2+32[Mn(H2O)6] Mn2+ [Ar]3d54s0 spdÔÓ»¯ Õý°ËÃæÌå
+ 100?
Ag [Kr]4d5s spÔÓ»¯ [Ag(CN)2] Ö±ÏßÐÎ 2+2+100
[Cd(NH3)4] Cd [Kr]4d5s sp3ÔÓ»¯ ÕýËÄÃæÌå
2+802?2Ni [Ar]3d4s [Ni(CN)4] dspÔÓ»¯ ƽÃæÕý·½ÐÎ 3+3+6023
[Co (NH3)6] Co [Ar]3d4s dspÔÓ»¯ Õý°ËÃæÌå
5£®ÊÔÈ·¶¨ÏÂÁÐÅäºÏÎïÊÇÄÚ¹ìÐÍ»¹ÊÇÍâ¹ìÐÍ£¬ËµÃ÷ÀíÓÉ£¬²¢ÒÔËüÃǵĵç×Ó²ã½á¹¹±íʾ֮¡£ (1) K4[Mn(CN)6]²âµÃ´Å¾Øm/?B=2.00£»(2) (NH4)2[FeF5(H2O)]²âµÃ´Å¾Øm/?B=5.78¡£ ½â£º(1) K4[Mn(CN)6]£¬´Å¾Øm/?B=2.00£¬Ö»ÓÐÒ»¸öδ³É¶Ôµç×Ó£»
2+5023
25Mn£¬ 3d4S£¬ ¡ü¡ý ¡ü¡ý ¡ü £¬dspÔÓ»¯£¬ÄÚ¹ìÐÍ£»
(2)(NH4)2[FeF5(H2O)]£¬´Å¾Øm/?B=5.78£¬ÓÐÎå¸öδ³É¶Ôµç×Ó£» 3+5032
26Fe £¬ 3d4S£¬ ¡ü ¡ü ¡ü ¡ü ¡ü £¬spdÔÓ»¯£¬Íâ¹ìÐÍ¡£
6£®ÔÚ1.0L°±Ë®ÖÐÈܽâ0.10mol AgCl£¬ÎÊ°±Ë®µÄ×î³õŨ¶ÈÊǶàÉÙ? ½â£ºÏÈÇó·´Ó¦µÄƽºâ³£ÊýK?
AgCl + 2NH3 = [Ag(NH3)2 ]+ + Cl?
c[Ag(NH?
23)2]?c(Cl)??c(NH3)c(NH3)?c(Ag)K= = K?f? K?sp
= 107.05?10?9.75 = 2.00?10?3
+?1??1
Èܽâʱ c[Ag(NH3)2 ] = 0.10mol?L£¬c(Cl) = 0.10mol?L£¬ ´úÈëÉÏʽµÃ£º
0.1¡Á0.1/c2(NH3) = 2.00 ¡Á10?3 c(NH3) = 2.25 mol?L?1
?1
¼ÓÉÏÅäλÔÚÅäÀë×ÓÖÐµÄ c(NH3) = 0.20mol?L£¬¹ÊNH3µÄ³õŨ¶ÈΪ
2.25 + 0.20 = 2.45(mol?L?1)
7£®¸ù¾ÝK?MYÖµÅжÏÏÂÁз´Ó¦½øÐеķ½Ïò£¬²¢×÷¼òҪ˵Ã÷¡£ [Cu(NH3)2]+ + 2CN? = [Cu(CN)2]? + 2NH3 [Cu(NH3)4]2++ Zn2+ = [Zn(NH3)4]2+ +Cu2+
?c[Ag(NH23)2]?c(Cl)?c(Ag)????½â£º (1) [Cu(NH3)2]+ + 2CN? = [Cu(CN)2]? + 2NH3
c(NH3)cCu(CN)2?23)2fK? = c(CN?+
[Cu(CN)2]±È[Cu(NH3)2]Îȶ¨£¬·´Ó¦ÏòÓÒ¡£
(2) [Cu(NH3)4]2++ Zn2+ = [Zn(NH3)4]2+ +Cu2+
?)c?Cu(NH?2????33??
?Cu(NHK
?KfCu(CN)3?2)2???10?1024.010.86?1.4?1013
?
K? =K??Cu(NHf K?fZn(NH)4)2?2?4??10?109.4613.32?1.4?10?4
[Cu(NH3)4]±È[Zn(NH3)4]Îȶ¨£¬·´Ó¦Ïò×ó¡£
+ ?
8£®ÒÑÖªAg+ e = Ag µÄE? = 0.799V£¬ÀûÓÃK?MYÖµÊÔ¼ÆËãÏÂÁеç¶ÔµÄ±ê×¼µç¼«µçÊÆ¡£
(1) Ag(CN)2? + e ? = Ag + 2CN?
(2) Ag(SCN)2? + e ? = Ag + 2SCN?
? ??
½â£º (1) Ag(CN)2+ e = Ag + 2CN
?++
E?[Ag(CN)2/Ag] = E?(Ag/Ag) + 0.059Vlgc(Ag)
+?
=E?(Ag/Ag) + 0.059Vlg{1/Kf?[ Ag(CN)2]} = 0.799V + 0.059Vlg(1/1.3?1021) = ?0.48V
?
(2) Ag(SCN)2+e = Ag + 2SCN?
E?[Ag(SCN)2?/Ag] = E?(Ag+/Ag) + 0.059lgc(Ag+)
= E?(Ag+/Ag) + 0.059lg{1/Kf?[ Ag(SCN)2?]} = 0.799V + 0.059Vlg(1/3.7?107)
= 0.352V
?1?1
9£®50mL 0.l0mol?LµÄAgNO3ÈÜÒº£¬¼ÓÃܶÈΪ0.932g? mLº¬NH3 18.24%µÄ°±Ë®30mL£¬¼Ó
+
ˮϡÊ͵½100mL£¬ÇóÕâÈÜÒºÖеÄAgµÄŨ¶È¡£ ½â£º°±Ë®µÄŨ¶ÈΪ
c(NH3) = ¦Ñ? w(NH3)/M(NH3)
= 932g?L?1?0.1824/17.03g?moL?1
?1
= 9.98 mol?L
Ï¡Êͺó°±Ë®µÄŨ¶ÈΪ
?1?1
c(NH3) = 9.98 mol?L?30/100 = 3.0mol?L
ÉèÈÜÒºÖеÄAg+Ũ¶ÈΪ x Ag+ + 2NH3 = [Ag(NH3)2]+
ƽºâŨ¶È/ mol?L?1 x 3.0?2(0.05?x)¡Ö 2.9 0.050?x ¡Ö 0.050 ´úÈëƽºâ³£Êý£¬µÃ 0.050/(2.9)2x = 1.1?107
x = 5.4?10?10 mol?L?1
¼´ÈÜÒºÖÐAg+Ũ¶ÈΪ5.4?10?10mol?L?1¡£
10£®ÔÚµÚ9ÌâµÄ»ìºÏÒºÖмÓ10mL 0.10mol?L?1µÄKBrÈÜÒº£¬ÓÐûÓÐAgBr³ÁµíÎö³ö£¿Èç¹ûÓû
×èÖ¹AgBr³ÁµíÎö³ö£¬°±µÄ×îµÍŨ¶ÈÊǶàÉÙ? ½â£ºÈÜÒºÖмÓÈë0.10mol?L?1µÄKBrÈÜÒº10mLºó
c(Ag+) =5.4?10?10mol?L?1?100/110 = 4.9?10?10mol?L?1 c(Br?) = 0.10 mol?L?1?10/110 = 9.09?10?3mol?L?1
Q = c(Ag+)?c(Br?)
= 4.9?10?10?9.09?10?3
=4.45?10?12 > K?sp ÓÐAgBr³ÁµíÎö³ö¡£ +
Óû×èÖ¹AgBr³ÁµíÎö³ö£¬Ðè¿ØÖÆAgµÄŨ¶È
c(Ag+)< K?sp/c(Br?)
?13?3
= 5.0?10/9.09?10
?11?1
= 5.5?10mol?L
Éè°±µÄ×îµÍŨ¶ÈΪxAg+ + 2NH3 = [Ag(NH3)2]+
ƽºâŨ¶È/mol?L?1 5.5?10?11 x 0.050?100/110 = 0.0455 ´úÈëƽºâ³£Êý£¬µÃ
2+2+
0.0455/5.5?10?11x2 = 1.1?107
?1
x = 8.67mol?L,
¼´°±µÄ×îµÍŨ¶ÈΪ8.67mol?L?1¡£
11£®ÏÂÁл¯ºÏÎïÖÐÄÄЩ¿ÉÄÜ×÷ΪÓÐЧµÄòüºÏ¼Á£¿
H2O£»¹ýÑõ»¯Çâ(HO¡ªOH)£»H2N¡ªCH2CH2Ò»NH2£»Áª°±H2N¡ªNH2£» ½â£ºÓÐЧµÄòüºÏ¼ÁΪH2N¡ªCH2CH2Ò»NH2 12£®»Ø´ðÏÂÁÐÎÊÌâ
+
(1) ÔÚº¬ÓÐ[Ag(NH3)2]ÅäÀë×ÓµÄÈÜÒºÖеμÓÑÎËáʱ»á·¢ÉúʲôÏÖÏó? Ϊʲô?
2?2+2?
(2) [Co(SCN)4]µÄÎȶ¨ÐÔ±È[Co(NH3)6]С£¬ÎªÊ²Ã´ÔÚËáÐÔÈÜÒºÖÐ[Co(SCN)4)¿ÉÒÔ´æÔÚ£¬¶ø
2+
[Co(NH3)6]È´²»ÄÜ´æÔÚ?
½â£º(1) µÎ¼ÓÑÎËáʱ²úÉú°×É«³Áµí£¬Ag+ + Cl? = AgCl?¡£
(2) ÒòΪNH3¼îÐÔ±ÈSCN?Ç¿£¬ÔÚËáÐÔ½éÖÊÖУ¬NH3 + H+ = NH4+ ʹNH3Ũ¶ÈϽµ£¬
2+
[Co(NH3)6]½âÀëÇ÷ÓÚÍêÈ«¶ø²»ÄÜ´æÔÚ¡£
?1
13£®¼ÆËãÔÚ1L 0.01mol?LKCNÈÜÒºÖУ¬¿ÉÈܽâ¶àÉÙAgCl¹ÌÌå?
? ??
½â£º AgCl + 2CN = [Ag(CN)2] + Cl
K?
?c[Ag(CN)2?2]?c(Cl)??2?c(CN
21)?c[Ag(CN)2?2]?c(Cl)?c(Ag)?????Kf[Ag(CN)]?Ksp(AgCl)?10?
c(CN)?c(Ag)??1.25?10?2.3?10?1
?1.8?1011AgCl + 2CN= [Ag(CN)2] + Cl
ƽºâ/mol?L2x 0.0050? x 0.0050? x
211
K? = (0.0050? x)(2x) = 2.3?10
?
K?ÖµºÜ´ó£¬ ·´Ó¦½øÐеúÜÍêÈ«£¬ Ag(CN)2½âÀ뼫ÉÙ£¬ 0.0050?x ? 0.0050
?
ËùÒÔÄܲúÉú0.0050mol Ag(CN)2
m(AgCl) = 0.0050 mol? 143.32g?moL?1 = 0.7166g
2+
14£®¼ÆËãÓÃÒÒ¶þ°·ËÄÒÒËáÈÜÒºµÎ¶¨ZnʱÔÊÐíµÄ×î¸ßËá¶È¡£ ½â£º lg?Y(H) = lgK?(ZnY) ¨C 8 =16.36?8 =8.36
²é±í¿ÉÖª×î¸ßËá¶ÈΪpH=4.0 15£®³ÆÈ¡·ÖÎö´¿CaCO3 0.4206g£¬ÓÃHClÈÜÒºÈܽâºó£¬Ï¡ÊͳÉ500.0mL£¬È¡³ö¸ÃÈÜÒº50.00mL£¬
ÓøÆָʾ¼ÁÔÚ¼îÐÔÈÜÒºÖÐÒÔÒÒ¶þ°·ËÄÒÒËáµÎ¶¨£¬ÓÃÈ¥38.84mL£¬¼ÆËãÒÒ¶þ°·ËÄÒÒËá±ê×¼ÈÜÒºµÄŨ¶È¡£ÅäÖƸÃŨ¶ÈµÄÒÒ¶þ°·ËÄÒÒËá1.000L£¬Ó¦³ÆÈ¡Na2H2Y£®2H2O¶àÉÙ¿Ë? ½â£º c(H4Y) = [(0.4206?50?1000)/(500?100.09?38.84)]mol¡¤L?1
= 0.01082 mol¡¤L?1
m(Na2H2Y?2H2O) = 0.01082 mol¡¤L?1?1.000 L ?372.26g¡¤mol?1 = 4.028g
16£®È¡Ë®Ñù100.00mL£¬ÔÚpH=10.0ʱ£¬ÓøõºÚTΪָʾ¼Á£¬ÓÃc(EDTA)=0.01050mol?L?1µÄ
ÈÜÒºµÎ¶¨ÖÁÖյ㣬ÓÃÈ¥19.00mL£¬¼ÆËãË®µÄ×ÜÓ²¶È¡£ ½â£º Ë®µÄ×ÜÓ²=0.01050mol?L?1?19.00?10?3L ?56.08?103mg¡¤mol?1/100.0?10?3L
= 111.9mg?L?1
17£®³ÆÈ¡º¬Á×ÊÔÑù0.1000g£¬´¦Àí³ÉÈÜÒº£¬²¢°ÑÁ׳ÁµíΪMgNH4PO4¡£½«³Áµí¹ýÂËÏ´µÓºóÔÙ
?1
Èܽ⣬ȻºóÓÃc(H4Y)=0.01000mol?LµÄ±ê×¼ÈÜÒºµÎ¶¨£¬¹²ÏûºÄ20.00mL¡£Çó¸ÃÊÔÑùÖÐP2O5µÄÖÊÁ¿·ÖÊý¡£
½â£º w(P2O5) = [(0.01000?20.00?141.95)/(0.1000?1000?2) ]= 0.1420 18£®·ÖÎöÍпºÏ½ð¡£³ÆÈ¡0.5000gÊÔÑù£¬ÓÃÈÝÁ¿Æ¿Åä³É100.0mLÊÔÒº¡£ÎüÈ¡¸ÃÈÜÒº25.00mL£¬
?12+2+
µ÷ÖÁpH=6.0ʱ£¬ÒÔPAN×÷ָʾ¼Á£¬ÓÃc(H4Y)=0.05000mol?LµÄÈÜÒºµÎ¶¨CuºÍZn£¬
2+2+
ÓÃÈ¥37..30mL¡£ÁíÍâÓÖÎüÈ¡25.00mLÊÔÒº£¬µ÷ÖÁpH=10,¼ÓKCNÒÔÑÚ±ÎCu ºÍZn¡£
2+2+
ÓÃͬŨ¶ÈµÄH4YÈÜÒºµÎ¶¨Mg, ÓÃÈ¥4.10mL¡£È»ºóÔÙ¼Ó¼×È©ÒÔ½â±ÎZn, ÓÖÓÃͬŨ¶ÈµÄH4YÈÜÒºµÎ¶¨£¬ÓÃÈ¥13.40mL¡£¼ÆËãÊÔÑùÖк¬Cu2+ ¡¢Zn2+ºÍMg2+µÄº¬Á¿¡£ ½â£º w(Mg) = (0.05000?4.10?100?24.31)/(25?0.5000?1000) = 0.0399
w(Zn) = (0.05000?13.40?100?65.39)/(25?0.5000?1000) = 0.3504
? ??