Q.(a) Explain the spectral series of hydrogen atom. (Diagram not necessary) OR
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Start your 14-day free trial to unlock the full solution →(a) The hydrogen spectrum, arising from electron transitions between Bohr energy levels, groups into named series (Lyman, Balmer, Paschen, Brackett, Pfund) according to the final energy level , each obeying the Rydberg formula. (b) An AM radio transmitter combines an amplified audio signal with a high-frequency carrier in a modulator, then radiates the amplified AM wave via an antenna. Both alternatives are answered in full below.
(a) Spectral series of the hydrogen atom
In the Bohr model, the electron in a hydrogen atom can exist only in certain discrete, stationary energy levels labelled by the principal quantum number , with energy . When the electron makes a transition from a higher level to a lower level (), it emits a photon of energy , whose wavenumber is given by the Rydberg formula
where is the Rydberg constant.
For a fixed lower level , the transitions from all higher levels form a group of spectral lines called a series, converging to a series limit () as . The named series are:
- Lyman series (, ): lies in the ultraviolet region.
- Balmer series (, ): lies in the visible region (the only series visible to the eye).
- Paschen series (, ): lies in the infrared region.
- Brackett series (, ): lies in the infrared region.
- Pfund series (, ): lies in the (far) infrared region.
Each series' lines get progressively closer together and weaker in intensity as increases, converging to the series limit.
(b) AM radio transmitter
An amplitude-modulated (AM) radio transmitter converts a sound signal into a radio wave for broadcasting, through the following blocks in sequence:
- Microphone: converts the sound (audio) signal into a corresponding weak electrical audio-frequency (AF) signal.
- Audio amplifier: amplifies this weak AF electrical signal to a level suitable for modulation. …
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