Calculate the longest wavelengths belonging to Lyman and Balmer series. Which of these wavelengths will lie in the visible region ?

Calculate the longest wavelengths belonging to Lyman and Balmer series

1.	Calculate the longest wavelengths belonging to Lyman and Balmer series. Which of these wavelengths will lie in the visible region ?
Answer» Solution :From Rydberg.s FORMULA , we have `1/lambda_(if)=R[1/n_f^2-1/n_i^2]` For longest wavelength in Lyman series, `n_i`=2 and `n_f` =1 `therefore 1/lambda_21=R[1/1^2-1/2^2]=3/4R` `RARR lambda_21=4/(3R)=4/(3xx1.1xx10^7)` `=1.21xx10^7` m =121 nm For longest wavelength in Balmer series, `n_i`=3 and `n_f`=2 `therefore 1/lambda_32=R[1/2^2-1/3^2]=(5R)/36` `rArr lambda_32=36/(5R)=36/(5xx1.1xx10^7)=6545xx10^(-10)` m =654.5 nm Between the TWO wavelengths , only 655 nm lies in the visible REGION.

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Calculate the longest wavelengths belonging to Lyman and Balmer series. Which of these wavelengths will lie in the visible region ?

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