1.

Explain the following (i). With the same d orbital configuration (d4) before Cr2+ is a reducing agent while Mn3+ is an oxidizing agent (ii). Many of the transition metals are known to form interstitial compounds

Answer»

(i) Cr2+ has the configuration 3d4 . It can lose electron to form Cr3+ which has stable 3d3 configuration. Hence it is reducing agent. On the other hand, Mn3+ also has 3d4 configuration but it can gain electron to form Mn2+ which has stable 3d5 configuration (as it is exactly half - filled). Hence it is oxidising agent. 

(ii) Many of the transition elements are known to form interstitial compounds due to presence of unpaired electrons in the d-orbital.



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