EN of the element (A) is `E_(1)` and EA is `E_(2)` hence IP will be :A. `2e_(1)-E_(2)`B. `E_(1)-E_(2)`C. `E_(1)-2E_(2)`D. `(E_(1)+E_(2))//2`

EN of the element (A) is `E_(1)` and EA is `E_(2)` hence IP will be :A

1.	EN of the element (A) is `E_(1)` and EA is `E_(2)` hence IP will be :A. `2e_(1)-E_(2)`B. `E_(1)-E_(2)`C. `E_(1)-2E_(2)`D. `(E_(1)+E_(2))//2`
Answer» Correct Answer - A

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EN of the element (A) is `E_(1)` and EA is `E_(2)` hence IP will be :A. `2e_(1)-E_(2)`B. `E_(1)-E_(2)`C. `E_(1)-2E_(2)`D. `(E_(1)+E_(2))//2`

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