ÌâÄ¿ÄÚÈÝ
ÓÃ6.02×1023±íʾ°¢·üµÂÂÞ³£ÊýµÄÖµ£¬ÏÂÁÐÐðÊöÕýÈ·µÄÊÇ£¨ £©A£®±ê×¼×´¿öÏ£¬22.4LH2Oº¬ÓеķÖ×ÓÊýΪ6.02×1023
B£®³£Î³£Ñ¹Ï£¬1.06g Na2CO3º¬ÓеÄNa+Àë×ÓÊýΪ0.02×6.02×1023
C£®Í¨³£×´¿öÏ£¬6.02×1023 ¸öCO2·Ö×ÓÕ¼ÓеÄÌå»ýΪ22.4L
D£®ÎïÖʵÄÁ¿Å¨¶ÈΪ0.5mol/LµÄMgCl2ÈÜÒºÖУ¬º¬ÓÐCl- ¸öÊýΪ6.02×1023
¡¾´ð°¸¡¿·ÖÎö£ºA¡¢Ó¦ÓÃÆøÌåĦ¶ûÌå»ýʱ£¬ÎïÖÊËù´¦×´Ì¬±ØÐëÊÇÆøÌ壬¶øË®ÊÇÒºÌ壻
B¡¢¸ù¾Ý̼ËáÄÆµÄĦ¶ûÖÊÁ¿ÇóË㣻
C¡¢Ó¦¸ÃÊDZê×¼×´¿öϲÅÄÜÓ¦ÓÃÆøÌåĦ¶ûÌå»ý22.4L/mol£»
D¡¢²»ÖªµÀÂÈ»¯Ã¾ÈÜÒºµÄÌå»ý£¬ÎÞ·¨ÖªµÀÂÈ»¯Ã¾µÄÎïÖʵÄÁ¿£®
½â´ð£º½â£ºA¡¢±ê×¼×´¿öÏ£¬Ë®ÊÇÒºÌ壬ÎÞ·¨Çó³öÎïÖʵÄÁ¿£¬¹ÊA´íÎó£»
B¡¢Ì¼ËáÄÆµÄĦ¶ûÖÊÁ¿ÊÇ106g/mol£¬1.06g̼ËáÄÆµÄÎïÖʵÄÁ¿Îª0.01mol£¬º¬ÓÐ0.02molÄÆÀë×Ó£¬º¬ÓеÄNa+Àë×ÓÊýΪ0.02×6.02×1023£¬¹ÊBÕýÈ·£»
C¡¢Í¨³£×´¿öÏÂµÄÆøÌåĦ¶ûÌå»ý²»ÖªµÀ£¬ÎÞ·¨ÇóËã¶þÑõ»¯Ì¼µÄÎïÖʵÄÁ¿£¬¹ÊC´íÎó£»
D¡¢ÂÈ»¯Ã¾ÈÜÒºµÄÌå»ý²»Öª£¬ÎÞ·¨ÇóËãÂÈ»¯Ã¾µÄÎïÖʵÄÁ¿£¬¹ÊD´íÎó£»
¹ÊÑ¡B£®
µãÆÀ£º±¾ÌâÒÔ°¢·üÙ¤µÂÂÞ³£ÊýΪÇÅÁº£¬¿¼²éÁËÓйØÎïÖʵÄÁ¿µÄ¼ÆË㣬עÒâÓ¦ÓÃÆøÌåĦ¶ûÌå»ý£¬±ØÐëÊÇÆøÌ壬ÄѶÈÊÊÖУ®
B¡¢¸ù¾Ý̼ËáÄÆµÄĦ¶ûÖÊÁ¿ÇóË㣻
C¡¢Ó¦¸ÃÊDZê×¼×´¿öϲÅÄÜÓ¦ÓÃÆøÌåĦ¶ûÌå»ý22.4L/mol£»
D¡¢²»ÖªµÀÂÈ»¯Ã¾ÈÜÒºµÄÌå»ý£¬ÎÞ·¨ÖªµÀÂÈ»¯Ã¾µÄÎïÖʵÄÁ¿£®
½â´ð£º½â£ºA¡¢±ê×¼×´¿öÏ£¬Ë®ÊÇÒºÌ壬ÎÞ·¨Çó³öÎïÖʵÄÁ¿£¬¹ÊA´íÎó£»
B¡¢Ì¼ËáÄÆµÄĦ¶ûÖÊÁ¿ÊÇ106g/mol£¬1.06g̼ËáÄÆµÄÎïÖʵÄÁ¿Îª0.01mol£¬º¬ÓÐ0.02molÄÆÀë×Ó£¬º¬ÓеÄNa+Àë×ÓÊýΪ0.02×6.02×1023£¬¹ÊBÕýÈ·£»
C¡¢Í¨³£×´¿öÏÂµÄÆøÌåĦ¶ûÌå»ý²»ÖªµÀ£¬ÎÞ·¨ÇóËã¶þÑõ»¯Ì¼µÄÎïÖʵÄÁ¿£¬¹ÊC´íÎó£»
D¡¢ÂÈ»¯Ã¾ÈÜÒºµÄÌå»ý²»Öª£¬ÎÞ·¨ÇóËãÂÈ»¯Ã¾µÄÎïÖʵÄÁ¿£¬¹ÊD´íÎó£»
¹ÊÑ¡B£®
µãÆÀ£º±¾ÌâÒÔ°¢·üÙ¤µÂÂÞ³£ÊýΪÇÅÁº£¬¿¼²éÁËÓйØÎïÖʵÄÁ¿µÄ¼ÆË㣬עÒâÓ¦ÓÃÆøÌåĦ¶ûÌå»ý£¬±ØÐëÊÇÆøÌ壬ÄѶÈÊÊÖУ®
Á·Ï°²áϵÁдð°¸
Ïà¹ØÌâÄ¿