£¨ÒÑУÕýΪ273K£© ¡£Çó²úÎïHClµÄ×ÜÁ¿×ÓЧÂÊ¡£
½â£º¡÷n(Cl2)=¡÷pV/(RT)=2.86¡Á10-4mol , ÎüÊÕ¹â×Ó n = Iat / (Lhc/¦Ë) = 2.2¡Á10-10 mol ,
Á¿×ÓЧÂÊ=¡÷n(Cl2)/ n=2.6¡Á106
8-17 ÔÚ0.059 dm3µÄ·´Ó¦Æ÷ÖÐÊ¢ÓÐÆø̬±ûͪ£¬ÔÚ840KÏ£¬ÒÔ313 nm µÄ¹âÕÕÉ䣬·¢ÉúÏÂÁзֽⷴӦ£º (CH3)2CO + h¦Í ¡ú C2H6 + CO
ÒÑÖªÈëÉä¹âÄÜΪ48.1¡Á10-4 J.s-1£¬¶ø±ûͪÎüÊÕÈëÉä¹âµÄ·ÖÊýΪ0.195£¬ ÕÕÉä7 hºó·´Ó¦ÆøÌåµÄѹÁ¦ÓÉ 102.16 kPa±äΪ104.42 kPa ¡£ÊÔ¼ÆËã¸Ã·´Ó¦µÄÁ¿×ÓЧÂÊ¡£
½â£º¡÷n(±ûͪ)=¡÷pV/(RT)=1.91¡Á10-5 mol,ÎüÊÕ¹â×Ó n = Ia t¦Ç/ (Lhc/¦Ë) = 6.18¡Á10-5 mol
Á¿×ÓЧÂÊ=¡÷n(±ûͪ)/ n=0.309
8-18. ¶¡¶þËáÄÆ£¨S£©ÔÚø£¨E£¬¶¡¶þÏ©ÍÑÇâø£©µÄ×÷ÓÃÏ£¬Ñõ»¯Éú³É·´¶¡Ï©¶þËáÄÆ¡£ÒÀ´Î¸Ä±ä¶¡¶þËáÄÆŨ¶ÈÏ£¬²âµÃÏàÓ¦µÄ³õËÙÂÊ£¬Êý¾ÝÈçÏ£º
[S] / (10-3mol dm-3)
10.0 2.0 1.0 0.5 0.33
r0 / (10-6 mol dm-3s-1)
1.17 0.99 0.79 0.62 0.50
46
Çó·´Ó¦µÄ¼«ÏÞËÙÂʺÍÃ×Êϳ£Êý¡£
½â£º£©ÓÉ1/ r0 ¶Ô1/[S]×÷ͼ, Ö±ÏßµÄбÂÊΪ 0.39¡Á103 s, ½Ø¾àΪ0. 83¡Á106 (mol dm-3s-1)-1 .Çó³ö¼«ÏÞËÙÂÊrm=1.2¡Á10-6mol dm-3s-1 , Ã×Êϳ£Êý4.7¡Á10- 4mol.dm-3
8-19 ÒÒÍé´ß»¯Ç⻯·´Ó¦¿É±íʾÈçÏ£º
ÔÚ464Kʱ²âµÃÓйØÊý¾ÝÈçÏ£º
p(H2) / kPa
10 40 20 20
p(C2H6) / kPa
3.0 3.0 3.0 1.0 r / r0
4.10 0.25 1.00 0.32
ÆäÖÐr ´ú±í·´Ó¦ËÙÂÊ£¬r0 Êǵ±p(H2) = 20 kPa ºÍ p(C2H6) = 3.0 kPaʱµÄ·´Ó¦ËÙÂÊ¡£Èô·´Ó¦µÄËÙÂʹ«Ê½¿É±íʾΪ
ÊÔ¸ù¾ÝÉÏÁÐÊý¾ÝÇó³ömºÍnµÄÖµ¡£
½â£ºln{r}= ln{k}+ nln{ p(H2)}+ m ln{ p(C2H6)} ,½â·½³ÌµÃn = - 2, m = 1
47
8-20 ÏÂÊö·´Ó¦±»Ëá´ß»¯£º
Èô·´Ó¦µÄËÙÂʹ«Ê½¿É±íʾΪ
r = k [ Co(NH3)5F2+]¦Á[H+]¦Â
ÔÚÒ»¶¨µÄζȼ°³õʼŨ¶ÈÌõ¼þϲâµÃÁ½×é·ÖÊýÊÙÆÚÊý¾ÝÈçÏ£º
T / K
298 298 308
[Co(NH3)5F2+/(mol.dm-3)
[H+] / mol.dm-3
t1/2 / (102s)
t1/4 /(102s)
0.1 0.2 0.1
0.01 0.02 0.01
36 18 18
72 36 36
48
£¨1£©Çó·´Ó¦¼¶Êý¦ÁºÍ¦ÂµÄÖµ£»
£¨2£©Çó²»Í¬Î¶ÈʱµÄ·´Ó¦ËÙÂÊϵÊýkÖµ£»
£¨3£©¼ÆËã·´Ó¦µÄʵÑé»î»¯ÄÜEaµÄÖµ¡£
½â£º(1)Ëá´ß»¯ r = k¡¯ [ Co(NH3)5F2+]¦Á, k¡¯= k [H+]0¦Â ,2 t1/2 = t1/4 , ¦Á=1 . t1/2/ t1/2¡¯ =([H+]¡¯/[H+])¦Â ,¦Â=1 . (2) t1/2 =ln2/ k¡¯ , k(298) = 0.019 mol-1.dm3.s-1, k(308) = 0.039 mol-1.dm3.s-1 . £¨3£©Ea=52.9 kJ.mol-1
µÚ¾ÅÕµ绯ѧ»ù´¡ÖªÊ¶ Á· Ï° Ìâ
9-1 291Kʱ½«0.1 mol dm-3 NaC1ÈÜÒº·ÅÈëÖ±¾¶Îª2mmµÄǨÒƹÜÖУ¬¹ÜÖÐÁ½¸öAg-AgC1µç¼«µÄ¾àÀëΪ20cm£¬µç¼«¼äµçÊƽµÎª50V¡£Èç¹ûµçÊÆÌݶÈÎȶ¨²»±ä¡£ÓÖÖª291KʱNa+ºÍC1-µÄµçǨÒÆÂÊ·Ö±ðΪ3.73¡Á10-8ºÍ5.98¡Á10-8 m2 V-1 s-1£¬ÎÊͨµç30·ÖÖӺ󣺣¨1£©¸÷Àë×ÓǨÒƵľàÀ룻£¨2£©¸÷Àë×Óͨ¹ýǨÒƹÜijһ½ØÃæµÄÎïÖʵÄÁ¿£»£¨3£©¸÷Àë×ÓµÄǨÒÆÊý¡£
½â£º£¨1£©Àë×ÓǨÒƵľàÀëL(Na+)= U(Na+) (d¦Õ/dl)t =0.0168m , L(C1-)=0.0269m
£¨2£©n(Na+)=¦Ðr2c(Na+) L(Na+)=5.27¡Á10-6mol , n(C1-)=8.45¡Á10-6mol
£¨3£©t(Na+)= U(Na+)/[ U(Na+)+ U(C1-)]=0.384 , t (C1-)=0.616
49
9-2 ÓÃÒø×÷µç¼«µç½â AgNO3ÈÜÒº,ͨµçºóÓÐ0.078¿ËÒøÔÚÒõ¼«³Á»ý³öÀ´,¾·ÖÎöÖªÑô¼«Çøº¬ÓÐ AgNO30.236¿Ë,Ë®23.14¿Ë,¶øδµç½âÇ°µÄÈÜҺΪÿ¿ËË®º¬ÓÐ0.00739¿ËAgNO3,ÊÔÇóAg£«Àë×ÓµÄǨÒÆÊý¡£
½â£ºn(µç½â)= 0.078/108 mol , n(Ç°)= 0.00739¡Á23.14/170 mol, n(ºó)= 0.236/170 mol n(ǨÒÆ) = n(Ç°) - n(ºó) + n(µç½â) , t(Ag£«)= n(ǨÒÆ)/ n(µç½â)= 0.47
9-3 ijµçµ¼³ØÏȺó³äÒÔ0.001mol dm-3 µÄ HCl¡¢0.001mol dm-3 µÄNaClºÍ 0.001mol dm-3 µÄNaNO3ÈýÖÖÈÜÒº,·Ö±ð²âµÃµç×èΪ468,1580ºÍ1650¦¸.ÒÑÖªNaNO3 µÄĦ¶ûµçµ¼ÂÊΪ121 S cm2mol-1øµ,Èç²»¿¼ÂÇĦ¶ûµçµ¼ÂÊËæŨ¶ÈµÄ±ä»¯, ÊÔ¼ÆËã
(1) 0.001mol dm-3NaNO3 ÈÜÒºµÄµçµ¼ÂÊ?
øè (2) µçµ¼³Ø³£Êýl/A
(3)´Ëµçµ¼³ØÖгäÒÔ0.001mol dm-3HNO3ÈÜÒºµÄµç×èºÍHNO3µÄµçµ¼ÂÊ?
½â£º(1) = c =1.21¡Á10-4S cm-1 (2) l/A = /G =0.2cm-1
(3) ( HNO3)= ( HCl)+ ( NaNO3)- ( NaCl) , µçµ¼³Ø¡¢Å¨¶ÈÏàͬʱÓÐ
G ( HNO3)= G ( HCl)+ G ( NaNO3)- G ( NaCl)£¬R( HNO3)£½475¦¸ £¬ £½4.21¡Á10-4S cm-1
9-4 298.15KʱÓÃÍâÍÆ·¨µÃµ½ÏÂÁÐÇ¿µç½âÖÊÈÜÒºµÄ¼«ÏÞĦ¶ûµçµ¼ÂÊ·Ö±ðΪ£º (NH4C1)=1.499¡Á10-2 S m2 mol-1, (NaOH)=2.487¡Á10-2Sm2mol-1, (NaC1)=1.265¡Á10-2 S m2 mol-1¡£ÊÔÇó
50