The following complexex are given:
(1) trans−[Co(NH3)4Cl2]+
(2) cis−[Co(NH3)2(en)2]3+
(3) trans−[Co(NH3)2(en)2]3+
(4) [NiCl4]2−
(5) [TiF6]2−
(6) [CoF6]3−
Choose the correct code:
2 is optically active; 1, 3 are optically inactive
As a thumb rule for ions being coloured, look for CFSE to be small; in other words, the ligand needs to be weak field. Plus, we need unpaired electrons that could transit between eg and t2g.
[NiCl4]2− as well as [CoF6]3− have unpaired electrons with small CFSE. They are thus coloured. [TiF6]2− has a d0 configuration thus can't be coloured.
The above two can't be optically active (due to the presence of plane(s) of symmetries).