Embibe Experts Solutions for Chapter: Atomic Structure, Exercise 1: EXERCISE
Embibe Experts Chemistry Solutions for Exercise - Embibe Experts Solutions for Chapter: Atomic Structure, Exercise 1: EXERCISE
Attempt the free practice questions on Chapter 3: Atomic Structure, Exercise 1: EXERCISE with hints and solutions to strengthen your understanding. Practice Book for KVPY Aptitude Test - Stream SA Chemistry solutions are prepared by Experienced Embibe Experts.
Questions from Embibe Experts Solutions for Chapter: Atomic Structure, Exercise 1: EXERCISE with Hints & Solutions
Photon having energy equivalent to the binding energy of state of atom is used to eject an electron from the metal surface of work function . If the electrons are further accelerated through the potential difference of , then, the minimum value of de-Broglie wavelength in cm associated with the electron is found to be

In a sample of atoms, the electrons de-excite from a level to . The total number of lines belonging to the Balmer series are two. If the electrons are ionised from the level by the photons of energy , then determine the kinetic energy of the ejected photoelectrons.

An particle has an initial kinetic energy of , and it is accelerated through the potential difference of volts. If a proton has the initial kinetic energy of , and it is accelerated through the potential difference of volts, then find the approximate ratio of the final wavelengths associated with the proton and the particle.

Uncertainty in position of a particle of in space is . Determine, uncertainty in velocity in it. (Plank's constant, ) If answer is . then x is.

The orbital angular momentum for an electron revolving in an orbit is given by . Determine this momentum for an -electron.

Determine the wavelength of the radiation emitted, when in a hydrogen atom, the electron falls from infinity to the stationary state . (Rydberg constant )

Consider the ground state of the atom . Determine the number of electrons with the azimuthal quantum numbers, and , respectively.

Determine uncertainity in the position of an electron (mass ) moving with a velocity , accurate upto
