InterviewSolution
Saved Bookmarks
| 1. |
An element 'M' with electronic configuration (2,8,2) combines separately with NO_(3)^(-),SO_(4)^(2-)andPO_(4)^(3-) radicals. Write the formula of the three compounds so formed. To which group and period of the modern periodic table does the element 'M' belong ? Will 'M' form covalent or ionic compounds? Give reason to justify your answer. |
|
Answer» Solution :(i) The electronic configuration (2, 8, 2) of the element .M. suggests that it belongs to GROUP 2 and period 3 of the modern periodic table and its VALENCY is 2. (ii) The chemical FORMULA of the compounds are : `M(NO_(3))_(2)//Mg(NO_(3))_(2),MSO_(4)//MgSO_(4),M_(3)(PO_(4))_(2)//Mg_(3)(PO_(4))_(2)`. (iii) .M. will form ionic compounds by LOSING two electrons. |
|