If the wavelength of first line of the Balmer series of hydrogen atom is 656.1 nm, the wavelength of second line of this series would be

Question

If the wavelength of first line of the Balmer series of hydrogen atom is 656.1 nm, the wavelength of second line of this series would be (A) 218.7 nm (B) 328.0 nm (C) 486.0 nm (D) 640.0 nm

Tardigrade Admin · Accepted Answer

(1/λ1)=RH((1/22)-(1/32))=RH((5/36)) RH=(36/5×656.1) (1/λ2) =RH ((1/22)-(1/42)) (1/λ2)=(36/5×626.1)((3/16)) λ=(5×656.1 ×16/3×36)=486.0 nm

Q. If the wavelength of first line of the Balmer series of hydrogen atom is $656.1$ nm, the wavelength of second line of this series would be

$218.7 nm$

$328.0 nm$

$486.0 nm$

$640.0 nm$

Q. If the wavelength of first line of the Balmer series of hydrogen atom is 656.1 nm, the wavelength of second line of this series would be

218.7nm

328.0nm

486.0nm

640.0nm

λ1​1​=RH​(221​−321​)=RH​(365​) RH​=5×656.136​ λ2​1​=RH​(221​−421​) λ2​1​=5×626.136​(163​) λ=3×365×656.1×16​=486.0nm

Q. If the wavelength of first line of the Balmer series of hydrogen atom is $656.1$ nm, the wavelength of second line of this series would be

$218.7 nm$

$328.0 nm$

$486.0 nm$

$640.0 nm$