ÒÑÖªA¡¢B¡¢C¡¢D¡¢E¶¼ÊÇÔªËØÖÜÆÚ±íÖÐÇ°ËÄÖÜÆÚµÄÔªËØ£¬ËüÃǵĺ˵çºÉÊýA£¼B£¼C£¼D£¼E£®BÔ­×ÓµÄp¹ìµÀ°ë³äÂú£¬ÐγɵÄÇ⻯ÎïµÄ·ÐµãÊÇͬÖ÷×åÔªËصÄÇ⻯ÎïÖÐ×îµÍµÄ£®DÔ­×ӵõ½Ò»¸öµç×Óºó3p¹ìµÀÈ«³äÂú£®A+±ÈDÔ­×ÓÐγɵÄÀë×ÓÉÙÒ»¸öµç×Ӳ㣮CÓëAÐγÉA2CÐÍÀë×Ó»¯ºÏÎEµÄÔ­×ÓÐòÊýΪ26£¬EÔ­×Ó»òÀë×ÓÍâΧÓн϶àÄÜÁ¿Ïà½üµÄ¿Õ¹ìµÀ¶øÄÜÓëһЩ·Ö×Ó»òÀë×ÓÐγÉÅäºÏÎÇë¸ù¾ÝÒÔÉÏÇé¿ö£¬»Ø´ðÏÂÁÐÎÊÌ⣺£¨´ðÌâʱ£¬A¡¢B¡¢C¡¢D¡¢EÓÃËù¶ÔÓ¦µÄÔªËØ·ûºÅ±íʾ£©
£¨1£©A¡¢B¡¢C¡¢DµÄµÚÒ»µçÀëÄÜÓÉСµ½´óµÄ˳ÐòΪ______£®
£¨2£©CµÄÇ⻯Îï·Ö×ÓÊÇ______£¨Ìî¡°¼«ÐÔ¡±»ò¡°·Ç¼«ÐÔ¡±£©·Ö×Ó£®
£¨3£©»¯ºÏÎïBD3µÄ·Ö×ӿռ乹ÐÍÊÇ______£®
£¨4£©EÔªËØÔ­×ӵĺËÍâµç×ÓÅŲ¼Ê½ÊÇ______£»EµÄÒ»ÖÖ³£¼ûÅäºÏÎïE£¨CO£©5³£ÎÂϳÊҺ̬£¬ÈÛµãΪ-20.5¡æ£¬·ÐµãΪ103¡æ£¬Ò×ÈÜÓڷǼ«ÐÔÈܼÁ£®¾Ý´Ë¿ÉÅжÏE£¨CO£©5µÄ¾§ÌåÀàÐÍΪ______£»E£¨CO£©5ÖеÄÅäÌåCOÓëN2¡¢CN-µÈ»¥ÎªµÈµç×ÓÌ壬д³öCO·Ö×ӵĽṹʽ______£®
£¨5£©½ðÊôEµ¥Öʵľ§ÌåÔÚ²»Í¬Î¶ÈÏÂÓÐÁ½Öֶѻý·½Ê½£¬¾§°û·Ö±ðÈçÓÒͼËùʾ£®ÌåÐÄÁ¢·½¾§°ûºÍÃæÐÄÁ¢·½¾§°ûÖÐʵ¼Êº¬ÓеÄEÔ­×Ó¸öÊýÖ®±ÈΪ______£®

¡¾´ð°¸¡¿·ÖÎö£ºBÔ­×ÓµÄp¹ìµÀ°ë³äÂú£¬ÐγɵÄÇ⻯ÎïµÄ·ÐµãÊÇͬÖ÷×åÔªËصÄÇ⻯ÎïÖÐ×îµÍµÄ£¬µç×ÓÅŲ¼Ê½Ó¦Îª1S22S22P63S23P3£¬ÎªPÔªËØ£¬²»¿ÉÄÜÊǵªÔªËØ£¬·ñÔò·Ðµã²»ÊÇ×îµÍ£¬DÔ­×ӵõ½Ò»¸öµç×Óºó3p¹ìµÀÈ«³äÂú£¬Ô­×ӵĵç×ÓÅŲ¼Ê½Ó¦Îª1S22S22P63S23P5£¬ÎªClÔªËØ£¬A+±ÈDÔ­×ÓÐγɵÄÀë×ÓÉÙÒ»¸öµç×Ӳ㣬ÔòAӦΪNaÔªËØ£¬CÓëAÐγÉA2CÐÍÀë×Ó»¯ºÏÎÔòCӦΪµÚ¢öAÖ÷×åÔªËØ£¬¸ù¾ÝºËµçºÉÊýA£¼B£¼C£¼D£¼E¿É֪ӦΪSÔªËØ£¬EµÄÔ­×ÓÐòÊýΪ26£¬ÎªFeÔªËØ£®
£¨1£©¸ù¾ÝA¡¢B¡¢C¡¢DÔÚÖÜÆÚ±íÖеÄλÖú͵ÚÒ»µçÀëÄܵĵݱä¹æÂÉÅжϵÚÒ»µçÀëÄܵĴóС˳Ðò£»
£¨2£©¸ù¾Ý·Ö×ÓÖÐÕý¸ºµçºÉµÄÖØÐÄÊÇ·ñÖغÏÅжϷÖ×ÓµÄÀàÐÍ£»
£¨3£©ÀûÓü۲ãµç×Ó¶ÔÊý»¥³âÄ£ÐÍÅжϷÖ×ÓµÄÁ¢Ìå¹¹ÐÍ£»
£¨4£©¸ù¾ÝÄÜÁ¿×îµÍÔ­ÀíÊéдµç×ÓÅŲ¼Ê½£¬¸ù¾ÝÎïÀíÐÔÖÊÅжϾ§ÌåÀàÐÍ£¬¸ù¾ÝµÈµç×ÓÌ嵪ÆøµÄ½á¹¹Êéд½á¹¹Ê½£»
£¨5£©¸ù¾Ý¾§°ûÖÐ΢Á£¸öÊýµÄ·ÖÅä·½·¨¼ÆË㣮
½â´ð£º½â£º£¨1£©ÔÚÔªËØÖÜÆÚ±íÖУ¬Í¬Ò»ÖÜÆÚÔªËصĵÚÒ»µçÀëÄÜ´Ó×óµ½ÓÒÖð½¥Ôö´ó£¬Í¬Ò»Ö÷×åÔªËصĵÚÒ»µçÀëÄÜ´ÓÉϵ½ÏÂÖð½¥¼õС£¬¾Ý´Ë¿ÉÅжÏËÄÖÖÔªËصĵÚÒ»µçÀëÄܵÄ˳ÐòΪ£ºNa£¼S£¼P£¼Cl£¬¹Ê´ð°¸Îª£ºNa£¼S£¼P£¼Cl£»
£¨2£©CµÄÇ⻯ÎïΪH2S£¬·Ö×ÓÁ¢Ìå¹¹ÐͺÍË®·Ö×ÓÏàËÆ£¬ÎªVÐΣ¬·Ö×ÓÖÐÕý¸ºµçºÉÖÐÐIJ»Öصþ£¬Îª¼«ÐÔ·Ö×Ó£¬¹Ê´ð°¸Îª£º¼«ÐÔ£»
£¨3£©PCl3Öк¬ÓÐ3¸ö¦Ä¼ü£¬¹Âµç×Ó¶ÔÊýΪ£¬ËùÒÔ·Ö×ӵĿռ乹ÐÍÊÇƽÈý½Ç׶ÐΣ¬¹Ê´ð°¸Îª£ºÈý½Ç׶ÐΣ»
£¨4£©¸ù¾ÝÄÜÁ¿×îµÍÔ­ÀíÊéдµç×ÓÅŲ¼Ê½Îª£º1s22s22p63s23p63d64s2»ò[Ar]3d64s2£»·Ö×Ó³£ÎÂϳÊҺ̬£¬ÈÛµãΪ-20.5¡æ£¬·ÐµãΪ103¡æ£¬Ò×ÈÜÓڷǼ«ÐÔÈܼÁ£¬Ó¦Îª·Ö×Ó¾§ÌåËù¾ßÓеÄÐÔÖÊ£»COÓ뵪Æø»¥ÎªµÈµç×ÓÌ壬½á¹¹ÏàËÆ£¬½á¹¹Ê½ÎªC¡ÔO£¬¹Ê´ð°¸Îª£º1s22s22p63s23p63d64s2»ò[Ar]3d64s2£»·Ö×Ó¾§Ì壻C¡ÔO£»
 £¨5£©¸ù¾Ý¾§°ûÖÐ΢Á£¸öÊýµÄ·ÖÅä·½·¨¼ÆË㣬ÌåÐÄÁ¢·½¾§°ûʵ¼Êº¬ÓеÄEÔ­×Ó¸öÊýΪ£¬ÃæÐÄÁ¢·½¾§°ûÖÐʵ¼Êº¬ÓеÄEÔ­×Ó¸öÊýΪ£¬¹Ê¶þÕß±ÈֵΪ1£º2£®
¹Ê´ð°¸Îª£º1£º2£®
µãÆÀ£º±¾Ì⿼²éÔªËØÍƶÏÌ⣬ÍƶϳöÔªËصÄÖÖÀàÊǽâ´ð±¾ÌâµÄ¹Ø¼ü£¬ÍƶÏʱעÒâ´ÓÔ­×ӵĺËÍâµç×ÓÅŲ¼ÌصãÒÔ¼°ÔªËصÄÌØÊâÐÔÖÊΪͻÆÆ¿Ú½â´ð£¬±¾Ìâ¾ßÓÐÒ»¶¨ÄѶȣ®
Á·Ï°²áϵÁдð°¸
Ïà¹ØÏ°Ìâ

¿ÆÄ¿£º¸ßÖл¯Ñ§ À´Ô´£º ÌâÐÍ£º

£¨2011?ÉϺ£Ä£Ä⣩ÒÑÖªA¡¢B¡¢C¡¢D¡¢E¶¼ÊÇÖÜÆÚ±íÖÐÇ°ËÄÖÜÆÚµÄÔªËØ£¬ËüÃǵĺ˵çºÉÊýA£¼B£¼C£¼D£¼E£®ÆäÖÐA¡¢B¡¢CÊÇͬһÖÜÆڵķǽðÊôÔªËØ£®»¯ºÏÎïDCµÄ¾§ÌåΪÀë×Ó¾§Ì壬DµÄ¶þ¼ÛÑôÀë×ÓÓëCµÄÒõÀë×Ó¾ßÓÐÏàͬµÄµç×Ó²ã½á¹¹£®AC2Ϊ·Ç¼«ÐÔ·Ö×Ó£®B¡¢CµÄÇ⻯ÎïµÄ·Ðµã±ÈËüÃÇͬ×åÏàÁÚÖÜÆÚÔªËØÇ⻯ÎïµÄ·Ðµã¸ß£®EÊÇÈËÌåÄÚº¬Á¿×î¸ßµÄ½ðÊôÔªËØ£®Çë¸ù¾ÝÒÔÉÏÇé¿ö£¬»Ø´ðÏÂÁÐÎÊÌ⣺£¨´ðÌâʱ£¬A¡¢B¡¢C¡¢D¡¢EÓÃËù¶ÔÓ¦µÄÔªËØ·ûºÅ±íʾ£©
£¨1£©A¡¢B¡¢CµÄ·Ç½ðÊôÐÔÓÉÇ¿µ½ÈõµÄ˳ÐòΪ
O£¾N£¾C
O£¾N£¾C
£®
£¨2£©BµÄÇ⻯ÎïµÄ·Ö×ӿռ乹ÐÍÊÇ
Èý½Ç׶ÐÍ
Èý½Ç׶ÐÍ
£®ËüÊÇ
¼«ÐÔ·Ö×Ó
¼«ÐÔ·Ö×Ó
£¨ÌÐԺͷǼ«ÐÔ£©·Ö×Ó£®
£¨3£©Ð´³ö»¯ºÏÎïAC2µÄµç×Óʽ
£»Ò»ÖÖÓÉB¡¢C×é³ÉµÄ»¯ºÏÎïÓëAC2µç×ÓÊýÏàµÈ£¬Æ仯ѧʽΪ
N2O
N2O
£®
£¨4£©EµÄºËÍâµç×ÓÅŲ¼Ê½ÊÇ
1s22s22p63s23p64s2
1s22s22p63s23p64s2
£¬
£¨5£©10molBµÄ×î¸ß¼ÛÑõ»¯Îï¶ÔÓ¦µÄË®»¯ÎïµÄÏ¡ÈÜÒºÓë4molDµÄµ¥ÖÊ·´Ó¦Ê±£¬B±»»¹Ô­µ½×îµÍ¼Û£¬B±»»¹Ô­ºóµÄ²úÎﻯѧʽΪ
NH4NO3
NH4NO3
£®

²é¿´´ð°¸ºÍ½âÎö>>

¿ÆÄ¿£º¸ßÖл¯Ñ§ À´Ô´£º ÌâÐÍ£º

ÒÑÖªA¡¢B¡¢C¡¢D¡¢EÎåÖÖÎïÖÊÓÐÈçͼËùʾµÄת»¯¹Øϵ£¨²¿·Ö·´Ó¦Îï¼°·´Ó¦Ìõ¼þδÁгö£¬Èô½âÌâʱÐèÒª£¬¿É×÷ºÏÀí¼ÙÉ裩£¬ÇÒÎåÖÖÎïÖÊÖоùº¬ÓÐAÔªËØ£®
£¨1£©ÈôAΪ¹ÌÌåµ¥ÖÊ
¢ÙDµÄ»¯Ñ§Ê½Îª
SO3
SO3
£¬
¢ÚE¡úCµÄ»¯Ñ§·½³ÌʽΪ
2H2SO4£¨Å¨£©+Cu
  ¡÷  
.
 
CuSO4+SO2¡ü+2H2O
2H2SO4£¨Å¨£©+Cu
  ¡÷  
.
 
CuSO4+SO2¡ü+2H2O

¢Û½«CͨÈëij·Ç½ðÊôµ¥ÖʵÄÈÜÒºÖУ¬¿É·¢ÉúÑõ»¯»¹Ô­·´Ó¦Éú³ÉÁ½ÖÖÇ¿ËᣬÊÔ¾ÙÒ»Àýд³ö»¯Ñ§·½³Ìʽ
Cl2+SO2+2H2O=2HCl+H2SO4
Cl2+SO2+2H2O=2HCl+H2SO4
£®
£¨2£©ÈôAΪÆøÌåµ¥ÖÊ
¢ÙC¡úDµÄ»¯Ñ§·½³Ìʽ
2NO+O2=2NO2
2NO+O2=2NO2

¢ÚE¡úCµÄÀë×Ó·½³ÌʽΪ
3Cu+8H++2NO3-=3Cu2++2NO¡ü+4H2O
3Cu+8H++2NO3-=3Cu2++2NO¡ü+4H2O
£®

²é¿´´ð°¸ºÍ½âÎö>>

¿ÆÄ¿£º¸ßÖл¯Ñ§ À´Ô´£º ÌâÐÍ£º

£¨¢ñ£©Í¨³£Çé¿öÏ£¬Î¢Á£AºÍBΪ·Ö×Ó£¬CºÍEΪÑôÀë×Ó£¬DΪÒõÀë×Ó£¬ËüÃǶ¼º¬ÓÐ10¸öµç×Ó£»BÈÜÓÚAºóËùµÃµÄÎïÖʿɵçÀë³öCºÍD£»A¡¢B¡¢EÈýÖÖ΢Á£·´Ó¦ºó¿ÉµÃCºÍÒ»ÖÖ°×É«³Áµí£®Çë»Ø´ð£º
£¨1£©Óû¯Ñ§·ûºÅ±íʾÏÂÁÐ4ÖÖ΢Á££º
A
H2O
H2O
£»B
NH3
NH3
£»C
NH4+
NH4+
£»D
OH-
OH-
£®
£¨2£©Ð´³öA¡¢B¡¢EÈýÖÖ΢Á£·´Ó¦µÄÀë×Ó·½³Ìʽ£º
Al3++3NH3+3H2O¨TAl£¨OH£©3¡ý+3NH4+£»»òMg2++2NH3+2H2O¨TMg£¨OH£©2¡ý+2NH4+
Al3++3NH3+3H2O¨TAl£¨OH£©3¡ý+3NH4+£»»òMg2++2NH3+2H2O¨TMg£¨OH£©2¡ý+2NH4+
£®
£¨¢ò£©ÒÑÖªA¡¢B¡¢C¡¢DΪÆøÌ壬E¡¢FΪ¹ÌÌ壬GÊÇÂÈ»¯¸Æ£¬ËüÃÇÖ®¼äµÄת»»¹ØϵÈçͼËùʾ£º
Çë»Ø´ðÏÂÁÐÎÊÌ⣺
£¨1£©DµÄ»¯Ñ§Ê½ÊÇ
NH3
NH3
£¬EµÄ»¯Ñ§Ê½ÊÇ
NH4Cl
NH4Cl
£®
£¨2£©AºÍB·´Ó¦Éú³ÉCµÄ»¯Ñ§·½³ÌʽÊÇ£º
H2+Cl2
 µãȼ 
.
 
2HCl
H2+Cl2
 µãȼ 
.
 
2HCl
£®
£¨3£©EºÍF·´Ó¦Éú³ÉD¡¢HºÍGµÄ»¯Ñ§·½³ÌʽÊÇ£º
2NH4Cl+Ca£¨OH£©2
  ¡÷  
.
 
2NH3¡ü+2H2O+CaCl2
2NH4Cl+Ca£¨OH£©2
  ¡÷  
.
 
2NH3¡ü+2H2O+CaCl2
£®

²é¿´´ð°¸ºÍ½âÎö>>

¿ÆÄ¿£º¸ßÖл¯Ñ§ À´Ô´£º ÌâÐÍ£º

ÒÑÖªA¡¢B¡¢C¡¢D¡¢E¡¢F¶¼ÊÇÖÜÆÚ±íÖÐÇ°ËÄÖÜÆÚµÄÔªËØ£¬ËüÃǵĺ˵çºÉÊýÒÀ´ÎÔö´ó£¬ÆäÖÐA¡¢B¡¢CÊÇͬһÖÜÆÚÏàÁÚµÄÈýÖÖÔªËØ£¬B¡¢D¡¢FÔªËØÔ­×Ó×îÍâµç×Ó²ãµÄpÄܼ¶£¨¹ìµÀ£©Éϵĵç×Ó¾ù´¦ÓÚ°ëÂú״̬£¬ÔªËØEµÄ×î¸ßÕý¼ÛÑõ»¯ÎïµÄË®»¯ÎïÔÚͬÖÜÆÚÔªËصÄ×î¸ßÕý¼ÛÑõ»¯ÎïµÄË®»¯ÎïÖÐËáÐÔ×îÇ¿£®
Çë»Ø´ðÏÂÁÐÎÊÌ⣺
£¨1£©A¡¢B¡¢CÈýÔªËصĵÚÒ»µçÀëÄÜÓÉ´óµ½Ð¡µÄ˳ÐòΪ
 
£¨ÓöÔÓ¦µÄÔªËØ·ûºÅÌî¿Õ£¬Ï¿Õͬ£©£¬ÈýÕߵĵ縺ÐÔÓÉ´óµ½Ð¡µÄ˳ÐòΪ
 

£¨2£©A¡¢B¡¢CÈýÔªËصÄÇ⻯Îï·Ö×ӵĿռä½á¹¹·Ö±ðÊÇ
 

£¨3£©B¡¢D¡¢FÈýÔªËصÄÇ⻯ÎïµÄ·Ðµã´Ó¸ßµ½µÍÅÅÁдÎÐòÊÇ£¨Ìѧʽ£©
 
£¬ÆäÔ­ÒòÊÇ
 
£®
£¨4£©FÔªËØÔ­×Ó»ù̬ʱµÄºËÍâµç×ÓÅŲ¼Ê½Îª
 
£®
£¨5£©ÓÉB¡¢EÁ½ÖÖÔªËØ×é³ÉµÄ»¯ºÏÎïX£¬³£ÎÂÏÂΪÒ×»Ó·¢µÄµ­»ÆÉ«ÒºÌ壬x·Ö×ÓΪÈý½Ç׶ÐηÖ×Ó£¬ÇÒ·Ö×ÓÀïB¡¢EÁ½ÖÖÔ­×Ó×îÍâ²ã¾ù´ïµ½8¸öµç×ÓµÄÎȶ¨½á¹¹£®XÓöË®ÕôÆø¿ÉÐγÉÒ»ÖÖ³£¼ûµÄƯ°×ÐÔÎïÖÊ£¬ÔòX·Ö×ӵĵç×ÓʽΪ
 
£¬X·Ö×ÓµÄÖÐÐÄÔ­×ÓµÄÔÓ»¯¹ìµÀÀàÐÍΪ
 
£¬XÓëË®·´Ó¦µÄ»¯Ñ§·½³ÌʽÊÇ
 
£®¾«Ó¢¼Ò½ÌÍø
£¨6£©ÁíÓÐÒ»ÖÖλÓÚÖÜÆÚ±íÖÐdsÇøµÄÔªËØG£¬¸ÃÔªËص¥ÖÊÐγɵľ§Ì徧°ûÈçͼËùʾ£¬Èô¼ÙÉè¸ÃÔ­×Ӱ뾶Ϊr£¬Ïà¶ÔÔ­×ÓÖÊÁ¿ÎªMr£¬Ôò¸ÃÔªËص¥ÖʵÄÃܶȿɱíʾΪ
 
£®£¨ÓÃNA±íʾ°¢·ü¼ÓµÂÂÞ³£Êý£©

²é¿´´ð°¸ºÍ½âÎö>>

¿ÆÄ¿£º¸ßÖл¯Ñ§ À´Ô´£º ÌâÐÍ£º

ÒÑÖªA¡¢B¡¢C¡¢D·Ö±ðÊÇCu¡¢Ag¡¢Fe¡¢AlËÄÖÖ½ðÊôÖеÄÒ»ÖÖ£®ÒÑÖª¢ÙA¡¢C¾ùÄÜÓëÏ¡ÁòËá·´Ó¦·Å³öÆøÌ壻¢ÚBÓëDµÄÏõËáÑη´Ó¦£¬Öû»³öµ¥ÖÊD£»¢ÛCÓëÇ¿¼î·´Ó¦·Å³öÆøÌ壬ÓÉ´Ë¿ÉÒÔÍƶÏA¡¢B¡¢C¡¢DÒÀ´ÎÊÇ£¨¡¡¡¡£©
A¡¢Fe¡¢Cu¡¢Al¡¢AgB¡¢Al¡¢Cu¡¢Fe¡¢AgC¡¢Cu¡¢Ag¡¢Al¡¢FeD¡¢Ag¡¢Al¡¢Cu¡¢Fe

²é¿´´ð°¸ºÍ½âÎö>>

ͬ²½Á·Ï°²á´ð°¸