Home
Class 12
PHYSICS
The ionisation potential of hydrogen ato...

The ionisation potential of hydrogen atom is `13.6 eV`. The energy required to remove an electron in the `n = 2` state of the hydrogen atom is

A

1.9 eV

B

2.3 eV

C

3.4 eV

D

6.8 eV

Text Solution

Verified by Experts

The correct Answer is:
A
Promotional Banner

Topper's Solved these Questions

  • ATOMS

    AAKASH SERIES|Exercise PROBLEM|24 Videos
  • ATOMS

    AAKASH SERIES|Exercise EXERCISE - I|20 Videos
  • ATOMS

    AAKASH SERIES|Exercise EXERCISE -II|35 Videos
  • APPENDICES (REVISION EXERCISE)

    AAKASH SERIES|Exercise LAW OF MOTION|128 Videos
  • CAPACITORS

    AAKASH SERIES|Exercise PRACTICE SHEET (ADVANCED) (Integer Type Questions)|2 Videos

Similar Questions

Explore conceptually related problems

The ionisation potential of hydrogen atom is 13.6 volt. The energy required to remove an electron in the n = 2 state of the hydrogen atom is

The ionisation potential of hydrogen atom is 13.6 eV The energy required to remve as electron in the n = 2 state of the hydrogen atom is

If the ionization potential of hydrogen atom is 13.6eV , the energy required to remove from the third orbit of hydrogen atom is k//2eV . Find the value of k …….

What is the energy required to remove an electron from second orbit of hydrogen atom ?

What is the energy required to remove an electron from second orbit of hydrogen atom ?

The ionization energy of the electron in the lowest orbit of hydrogen atom is 13.6 eV. The energies required in eV to remove an electron from three lowest energy orbits of hydrogen atom respectively are

The energy ( in eV ) required to excite an electron from n = 2 to n = 4 state in hydrogen atom is

The ionisation potential of hydrogen atom is -13.6 eV. An electron in the ground state of a hydrogen atom absorbs a photon of energy 12.75 eV. How many diggerent spectral lines can one expect when the electron make a downward transition

If the ionization energy for the hydrogen atom is 13.6 eV , the energy required to excite it from the ground state to the next higher state is nearly

If the binding energy of the electron in a hydrogen atom is 13.6 eV , the energy required to remove the electron from the first excited state of Li^(++) is

AAKASH SERIES-ATOMS-EXERCISE -III
  1. As the electron in the Bohr orbit is hydrogen atom passes from state n...

    Text Solution

    |

  2. The energy of an electron in excited hydrogen atom is -3.4 eV . Then, ...

    Text Solution

    |

  3. The wavelength of first line of lyman series for hydrogen is 1216 A ...

    Text Solution

    |

  4. The ionisation potential of hydrogen atom is 13.6 eV. The energy requi...

    Text Solution

    |

  5. The radius of the Bohr orbit in the ground state of hydrogen atom is 0...

    Text Solution

    |

  6. The potential energy of an electron in the fifth orbit of hydrogen ato...

    Text Solution

    |

  7. If R is the Rydberg constant for hydrogen, then the wave number of the...

    Text Solution

    |

  8. If lamda1 and lamda2 are the wavelengths of the first members of the L...

    Text Solution

    |

  9. The ratio of maximum to minimum possible radiation energy Bohr's hyp...

    Text Solution

    |

  10. The shortest wavelength of Balmer series of H-atom is

    Text Solution

    |

  11. Given mass number of gold = 197, Density of gold = 19.7 g cm^(-3). The...

    Text Solution

    |

  12. Transition between three energy energy levels in a particular atom gi...

    Text Solution

    |

  13. An electron in a hydrogen atom makes a transition from n(1) to n(2). I...

    Text Solution

    |

  14. An electron revolving in an orbit of radius 0.5 Å in a hydrogen atom e...

    Text Solution

    |

  15. The radius of second Bohr’s orbit of Hydrogen atom is:

    Text Solution

    |

  16. If one were to apply Bohr model to a particle of mass 'm' and charge '...

    Text Solution

    |

  17. In hydrogen spectrum, the shortest wavelength in Balmer series is the ...

    Text Solution

    |

  18. If a charged particle is moving in a plane perpendicular to a uniform ...

    Text Solution

    |

  19. Condiser 3rd orbit of He^(+) (Helium), using non-relativistic approa...

    Text Solution

    |

  20. Identify A and B:

    Text Solution

    |