ÌâÄ¿ÄÚÈÝ
ÌúÊÇÓ¦ÓÃ×î¹ã·ºµÄ½ðÊô£¬ÌúµÄ±»¯Îï¡¢Ñõ»¯ÎïÒÔ¼°¸ß¼ÛÌúµÄº¬ÑõËáÑξùÎªÖØÒª»¯ºÏÎï¡£
(1)Ҫȷ¶¨ÌúµÄijÂÈ»¯ÎïFeClxµÄ»¯Ñ§Ê½£¬¿ÉÓÃÀë×Ó½»»»ºÍµÎ¶¨µÄ·½·¨¡£ÊµÑéÖгÆÈ¡0.54 gµÄFeClxÑùÆ·£¬ÈܽâºóÏȽøÐÐÑôÀë×Ó½»»»Ô¤´¦Àí£¬ÔÙͨ¹ýº¬Óб¥ºÍOH£µÄÒõÀë×Ó½»»»Öù£¬Ê¹Cl£ºÍOH£·¢Éú½»»»¡£½»»»Íê³Éºó£¬Á÷³öÈÜÒºµÄOH£ÓÃ0.40 mol¡¤L£1µÄÑÎËáµÎ¶¨£¬µÎÖÁÖÕµãʱÏûºÄÑÎËá25.0 mL¡£¼ÆËã¸ÃÑùÆ·ÖÐÂȵÄÎïÖʵÄÁ¿£¬²¢Çó³öFeClxÖÐxµÄÖµ£º__________________(Áгö¼ÆËã¹ý³Ì)¡£
(2)ÏÖÓÐÒ»º¬ÓÐFeCl2ºÍFeCl3µÄ»ìºÏÎïÑùÆ·£¬²ÉÓÃÉÏÊö·½·¨²âµÃn(Fe)¡Ãn(Cl)£½1¡Ã2.1£¬Ôò¸ÃÑùÆ·ÖÐFeCl3µÄÎïÖʵÄÁ¿·ÖÊýΪ__________¡£ÔÚʵÑéÊÒÖУ¬FeCl2¿ÉÓÃÌú·ÛºÍ__________·´Ó¦ÖƱ¸£¬FeCl3¿ÉÓÃÌú·ÛºÍ__________·´Ó¦ÖƱ¸¡£
´ð°¸¡¡(1)n(Cl)£½0.025 0 L¡Á0.40 mol¡¤L£1£½0.010 mol
0£®54 g£0.010 mol¡Á35.5 g¡¤mol£1£½0.185 g
n(Fe)£½0.185 g/56 g¡¤mol£1¡Ö0.003 3 mol
n(Fe)¡Ãn(Cl)£½0.003 3¡Ã0.010¡Ö1¡Ã3£¬x£½3
(2)0.10¡¡ÑÎËá¡¡ÂÈÆø
½âÎö¡¡½â´ð´ËÌâµÄ¹Ø¼üÊÇÃ÷È·ÒõÀë×Ó½»»»Öù½»
»»³öµÄOH£µÄÎïÖʵÄÁ¿µÈÓÚCl£µÄÎïÖʵÄÁ¿£¬´Ó¶øÇó³öFeClxÖÐxµÄÖµ¡£
(1)Ê×ÏÈÃ÷È·ÑôÀë×Ó½»»»ÖùºÍÒõÀë×Ó½»»»ÖùµÄ×÷Ó㬸ù¾ÝÀë×ÓµÈÁ¿½»»»£¬ÈÜÒºÖÐOH£µÄÎïÖʵÄÁ¿µÈÓÚFeClxÖÐCl£µÄÎïÖʵÄÁ¿¡£Í¨¹ýÖк͵ζ¨Öªn(OH£)£½n(H£«)£½0.40 mol¡¤
L£1¡Á25.0¡Á10£3 L£½0.010 mol£¬¹Ên(Cl£)£½0.010 mol¡£
FeClxÖÐFeÔªËØµÄÖÊÁ¿Îª0.54 g£35.5 g¡¤mol£1¡Á0.010 mol£½0.185 g
FeClxÖÐFeÔªËØÓëClÔªËØµÄÎïÖʵÄÁ¿Ö®±ÈΪ
¡Ã0.010 mol¡Ö1¡Ã3£¬¹Êx£½3¡£
(2)¸ù¾ÝÌâÒâ¿ÉÉè¸Ã»ìºÏÎïµÄ×é³ÉΪFeCl2.1£¬ÀûÓÃÊ®×Ö½»²æ·¨¿ÉµÃÑùÆ·ÖÐFeCl3µÄÎïÖʵÄÁ¿·ÖÊýΪ0.10¡£×¢ÒâÖÆ±¸FeCl2Ñ¡ÓÃÈõÑõ»¯¼Á£¬ÖƱ¸FeCl3Ñ¡ÓÃÇ¿Ñõ»¯¼Á¡£