×¢£º½Ì²Ä¸½Â¼Öиø³öµÄNH3ºÍCH3CH2NH2µÄ½âÀë³£ÊýÊÇKb¦È£¬¶ø²»ÊÇKa¦È
7-1 д³öÏÂÁÐËáµÄ¹²éî¼î¡£
COOHHNO3 H2Y2- H2O H3O+ H2PO4- HCO3-
´ð£ºÌâÄ¿Ëù¸øËáµÄ¹²éî¼îÈçϱíËùʾ£º 2-+ Ëá HNO3 H2Y H2O H3O COOHCOOHCOOH CHCl2COOH
CHCl2COOH CHCl2COO -H2PO4 -HCO3 -¹²éî¼î HNO3 -HY OH H3O 3--+ COO-COOHHPO4 2-CO3 2- 7-2 д³öÏÂÁмîµÄ¹²éîËá¡£
-2-2- H2O NH3 H2PO4 HPO4 CO3
NH2HCO3- (CH2)6N4 ´ð£ºÌâÄ¿Ëù¸øËáµÄ¹²éîËáÈçϱíËùʾ£º Ëá ¹²éî¼î Ëá H2O H3O HCO3 -+ Y4-
-NH3 NH4 (CH2)6N4 +H2PO4 H3PO4 NH2HPO4 H2PO4 Y 4--2-CO3 HCO3 -2-¹²éî¼î H2CO3 (CH2)6N4H +NH3+HY 3- 7-3 ÒÑÖªÏÂÁи÷ÖÖÈõËáµÄKa¦ÈÖµ£¬ÇóËüÃǵĹ²éî¼îµÄKb¦ÈÖµ£¬²¢½«¸÷¼î°´ÕÕ¼îÐÔÓÉÇ¿µ½ÈõµÄ˳Ðò½øÐÐÅÅÁС£
¢Ù HCN Ka¦È= 6.2¡Á10-10 ¢Ú HCOOH Ka¦È= 1.8¡Á10 -4 ¢Û C6H5OH Ka¦È= 1.1¡Á10-10 ¢Ü H3BO3 Ka¦È= 5.8¡Á10-10
¢Ý HPO42- Ka1¦È(H3PO4)= 7.6¡Á10 -3£¬ Ka2¦È(H3PO4)= 6.3¡Á10 -8£¬ Ka3¦È(H3PO4)= 4.4¡Á10 -13
¢Þ H2C2O4 Ka1¦È = 5.9¡Á10-2£¬ Ka2¦È = 6.4¡Á10-5£¬
¦È¦È¦È¦È¦È¦È
½â£º¸ù¾Ý¹²éîËá¼î¶ÔµÄ¹Øϵʽ£ºKaKb= Kw¿ÉÖª£ºKb=Kw/Ka£¬Òò´Ë£¬ÒÔÉϸ÷ËáµÄ¹²éî¼îKb¦È¼ÆËãÈçÏ£º
(1) HCNµÄ¹²éî¼îΪCN,ÆäKb¦È= Kw¦È/Ka¦È=(1.00?10-14)/(6.2¡Á10)=1.6¡Á10
---4-11
(2)HCOOHµÄ¹²éî¼îΪHCOO,ÆäKb¦È= Kw¦È/Ka¦È=(1.00?10-14)/(1.8¡Á10)=5.6¡Á10
--10-5
(3)C6H5OHµÄ¹²éî¼îΪC6H5O,ÆäKb¦È= Kw¦È/Ka¦È=(1.00?10-14)/(1.1¡Á10)=9.1¡Á10
--10
-5
1
(4)H3BO3µÄ¹²éî¼îΪH4BO4,ÆäKb¦È= Kw¦È/Ka¦È=(1.00?10-14)/( 5.8¡Á10)=1.7¡Á10
2-3--13-2
(5)HPO4µÄ¹²éî¼îΪPO4,ÆäKb¦È= Kw¦È/Ka3¦È=(1.00?10-14)/(4.4¡Á10)=2.3¡Á10
--2-13
(6)H2C2O4µÄ¹²éî¼îΪHC2O4,ÆäKb¦È= Kw¦È/Ka1¦È=(1.00?10-14)/(5.9¡Á10)=1.7¡Á10 ¸ù¾ÝÒÔÉϼÆËã½á¹û£¬¸÷ËáµÄ¹²éî¼î´ÓÇ¿µ½ÈõÒÀ´ÎΪ£º 3-------PO4 ¡µC6H5O >H2BO3 >CN >HCOO >HC2O4
--10
-5
7-4 0.010 mol¡¤L-1 HAcÈÜÒºµÄµçÀë¶È¦ÁΪ0.042£¬ÇóHAcµÄKa¦È¼°¸ÃÈÜÒºµÄH+ Ũ¶Èc ( H+)¡£Èç¹ûÔÚ500 mLÉÏÊöÈÜÒºÖУ¬¼ÓÈë2.1g NaAc£¨ÉèÌå»ý²»±ä£©£¬Çó¸ÃÈÜÒºµÄµçÀë¶È¦Á¼°H+ Ũ¶Èc( H+)£¬ÉÏÊö½á¹û˵Ã÷ʲôÎÊÌ⣿
½â£ºÓÉÓÚ¦Á<5%£¬¸ù¾ÝÏ¡ÊͶ¨ÂÉ£º
2-1-12-5
Ka¦È?(c0/c¦È)¦Á=(0.010 mol¡¤L/ 1mol¡¤L) ¡Á0.042=1.764¡Á10 +-1-4-1c(H)=c0¡Á¦Á=0.010 mol¡¤L¡Á0.042=4.2¡Á10 mol¡¤L
ÔÚ500mLÉÏÊöÈÜÒºÖУ¬¼ÓÈë2.1gNaAcºó£¬ÈÜÒºÖÐNaAcµÄŨ¶ÈΪ£º
-1
c(NaAc)=n(NaAc)/V(NaAc)=(2.1g/83.034g?mol)/0.5L=0.051mol/L ¼ÓÈë£Î£á£Á£ãºó£¬£È£Á£ãµÄ½âÀë¶È¸üС£¬Òò´Ë£º
-1£
£ã(HAc) ?0.010 mol¡¤L£¬£ã(Ac) ?0.051mol/L£¬ Ôò£º
¸ù¾Ý½âÀë³£Êý¼ÆË㹫ʽ¿ÉÖª£º
cH???c?HAc?/c??0.010?5?6?mol/L? ?K??c?1.764?10??3.459?10??cAc/c0.051?a????cH?/c?HAc??3.459?10?6/0.010?3.459?10?4
ÉÏÊö½á¹û±íÃ÷£¬¼ÓÈëNaAcºó£¬HAcµÄ½âÀë¶È´ó´ó½µµÍÁË£¬Ò²¾ÍÊÇͬÀë×ÓЧӦ¡£
??7-5 д³öÏÂÁл¯ºÏÎïË®ÈÜÒºµÄÖÊ×ÓÌõ¼þʽ£º
£¨1£©H3PO4 £¨2£©NaH2PO4 £¨3£©(NH4)2S £¨4£©NH4HCO3 £¨5£©Na3PO4
£¨6£©NH3 + NaOH £¨7£©HAc + H3BO3 £¨8£©HCl + HAc £¨9£©NH4F
½â£º
(1) Ñ¡ÔñH3PO4ºÍH2OΪÁãË®×¼£¬ÔòÈÜÒºÖеÄÖÊ×ÓתÒÆÇé¿ö£º
-+2-+
H3PO4+H2O=H2PO4+H3O H3PO4+2H2O=HPO4+2H3O
3-+-+
H3PO4+3H2O=PO4+3H3O H2O +H2O=OH+H3O
-2-3--+
¹ÊPBE: c(H2PO4)+2c(HPO4)+3c(PO4)+c(OH)=c(H)
-(2) Ñ¡ÔñH2PO4ºÍH2OΪÁãË®×¼£¬ÔòÈÜÒºÖеÄÖÊ×ÓתÒÆÇé¿ö£º
-2-+-3-+
H2PO4+H2O=HPO4+H3O H2PO4+2H2O=PO4+2H3O
---+
H2PO4+H2O= OH + H3PO4 H2O+H2O=OH+H3O
2-3--+
¹ÊPBE: c(HPO4)+2c(PO4)+c(OH)=c(H)+c(H3PO4)
+2-(3) Ñ¡ÔñNH4£¬SºÍH2OΪÁãË®×¼£¬ÔòÈÜÒºÖеÄÖÊ×ÓתÒÆÇé¿ö£º
++2---2---+NH4+H2O=NH3+H3O S+ H2O=OH+HS S+2H2O=2OH+H2S H2O+H2O=OH+H3O
-+-¹ÊPBE: c(NH3)+c(OH)=c(H)+c(HS)+ 2c(H2S)
+-(4) Ñ¡ÔñNH4£¬HCO3ºÍH2OΪÁãË®×¼£¬ÔòÈÜÒºÖеÄÖÊ×ÓתÒÆÇé¿ö£º
++---+2--+NH4+H2O=NH3+H3O HCO3+ H2O=OH+H2CO3 HCO3+ H2O= H3O+CO3 H2O+H2O=OH+H3O
-2-+
¹ÊPBE: c(NH3)+c(OH)+c(CO3)=c(H)+ c(H2CO3)
3-(5) Ñ¡ÔñPO4ºÍH2OΪÁãË®×¼£¬ÔòÈÜÒºÖеÄÖÊ×ÓתÒÆÇé¿ö£º 3-2--3---PO4+H2O=HPO4+OH PO4+2H2O=H2PO4+2OH 3---+
PO4+3H2O=H3PO4+3OH H2O+H2O=OH+H3O
2
¹ÊPBE: c(HPO4)+2c(H2PO4)+ 3c(H3PO4)+ c(H)=c(OH)
(6)Ñ¡ÔñNH3¡¢NaOHºÍH2OΪÁãË®×¼£¬ÔòÈÜÒºÖеÄÖÊ×ÓתÒÆÇé¿ö£º
+--++-NH3+H2O= NH4 + OH H2O+H2O=OH+H3O NaOH = Na+ OH +++-¹ÊPBE: c(NH4)+c(H)+ c(Na)=c(OH)
(7)Ñ¡ÔñHAc¡¢H3BO3ºÍH2OΪÁãË®×¼£¬ÔòÈÜÒºÖеÄÖÊ×ÓתÒÆÇé¿ö£º
-+-+-+
HAc+H2O= Ac +H3O H2O+H2O=OH+H3O H3BO3+2H2O=B(OH)4+H2O
---+
¹ÊPBE: c(Ac)+c(OH)+c(B(OH)4)=c(H)
(8)Ñ¡ÔñHAc¡¢HClºÍH2OΪÁãË®×¼£¬ÔòÈÜÒºÖеÄÖÊ×ÓתÒÆÇé¿ö£º
-+-++-HAc+H2O= Ac +H3O H2O+H2O=OH+H3O HCl+H2O=H2O+Cl ---+
¹ÊPBE: c(Ac)+c(OH)+ c(Cl)= c(H)
+-(9) Ñ¡ÔñNH4¡¢FºÍH2OΪÁãË®×¼£¬ÔòÈÜÒºÖеÄÖÊ×ÓתÒÆÇé¿ö£º
++---+NH4+ H2O= H3O+NH3 F+ H2O= OH+HF H2O+H2O=OH+H3O
-+
¹ÊPBE: c(OH)+ c(NH3)= c(H)+ c(HF)
2--+
-
7-6 ÀûÓ÷ֲ¼ÏµÊý£¬¼ÆËãpH = 3.00£¬0.10 mol¡¤L-1 NH4ClÈÜÒºÖÐNH3ºÍNH4+ µÄƽºâŨ¶È¡£
½â£ºPH=3.00ʱ£¬¸ù¾ÝÒ»ÔªÈõËáÌåϵ·Ö²¼ÏµÊýµÄ¼ÆË㹫ʽ£º
cH?1.0?10?3mol?L?1?NH???1.0 ????14?3?1?1cH?Kac1.0?10mol?L?10?1mol?L1.8?10?5??4?????????a??NH3??Kc1.8?10??14???cH?Kac1.0?10?3mol?L?1?10?510?14?1mol?L?11.8?10?5?1mol?L?1?5.6?10?7
¸ù¾Ý·Ö²¼ÏµÊýµÄ¼ÆË㹫ʽ¿ÉÖª£º ++-1-1
c(NH4)=?(NH4)c0=1.0?0.10 mol¡¤L=0.10 mol¡¤L
-7-1-8-1
c(NH3)= ?(NH3)c0=5.6?10?0.10 mol¡¤L=5.6?10 mol¡¤L
7-7 ¼ÆËãÏÂÁи÷Ë®ÈÜÒºµÄpH¡£ £¨1£©0.100 mol¡¤L-1HAcÈÜÒº £¨2£©0.150 mol¡¤L-1 ¶þÂÈÒÒËáÈÜÒº £¨3£©0.100 mol¡¤L-1NH4ClÈÜÒº £¨4£©0.400 mol¡¤L-1H3PO4ÈÜÒº £¨5£©0.100 mol¡¤L-1KCNÈÜÒº £¨6£©0.0500 mol¡¤L-1Na3PO4ÈÜÒº
£¨7£©0.025 mol¡¤L-1ÁÚ±½¶þ¼×ËáÇâ¼ØÈÜÒº £¨8£©1.00¡Á10-4 mol¡¤L-1 NH4AcÈÜÒº
£¨9£©1.00¡Á10-3 mol¡¤L-1 Na2HPO4ÈÜÒº
½â£º (1) ¡ß
??14c0Ka/c??0.100?1.8?10?5?1.8?10?6?20K??2.0?10?13£¬w?20?1.0?10²¢ÇÒ£¬c0/cKa?0.1/1.8?10¡à ²ÉÓÃÒ»ÔªÈõËáŨ¶ÈµÄ×î¼òʽ£º
????5??5.6?103?500
??cH??Kacc0?1.8?10?5?0.1?1.3?10?3mol?L?1
????3