The wave leagth of the first line of lyman series of hydrogen is identical to that second line of balmer series for some hydrogen like ion `X` The `IF_(2)` for X isA. `-54.4 eV`B. `-328 eV~`C. `-13.6 eV`D. `-3.8 eV`

The wave leagth of the first line of lyman series of hydrogen is ident

1.	The wave leagth of the first line of lyman series of hydrogen is identical to that second line of balmer series for some hydrogen like ion `X` The `IF_(2)` for X isA. `-54.4 eV`B. `-328 eV~`C. `-13.6 eV`D. `-3.8 eV`
Answer» Gives `lambda(lyman H_(2) = lambda (Balmer , X)` i.e `R_(H)xx 1^(2)((1)/(1^(2)) - (1)/(2^(2))) = R_(2)X^(2) ((1)/(2^(2)) - (1)/(3^(2)))` Second line Balmer `rArr n = 3` `rArr X = 2` Thus `IE_(2) = - 13.6(z^(2))/(n^(2)) = - 13.6 xx (2^(2))/(n^(2)) = -13.6 eV`

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The wave leagth of the first line of lyman series of hydrogen is identical to that second line of balmer series for some hydrogen like ion `X` The `IF_(2)` for X isA. `-54.4 eV`B. `-328 eV~`C. `-13.6 eV`D. `-3.8 eV`

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