JEE Mains · Chemistry · STD 12 -1. Solution and colligative properties
Two elements \(A\) and \(B\) which form \(0.15\,moles\) of \(A _{2} B\) and \(AB _{3}\) type compounds. If both \(A _{2} B\) and \(A B_{3}\) weigh equally, then the atomic weight of \(A\) is \(....\) times of atomic weight of \(B\).
- A \(45\)
- B \(4\)
- C \(2\)
- D \(9\)
Answer & Solution
Correct Answer
(C) \(2\)
Step-by-step Solution
Detailed explanation
Given: Molar mass of \(A _{2} B = AB _{3}\) \(\therefore(2 A+B)=(A+3 B)[A \rightarrow \text { Atomic wt. of } A , B \rightarrow \text { Atomic wt. of } B]\) \(\Rightarrow A=2 B\) \(\therefore\) atomic wt. of \(A\) is \(2\) times of atomic wt. of \(B\) Integer answer is \(2\)
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