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According to bohrs theory of hydrogen atom the speed vn of electron in a stable orbit is related to principal quantum number n as c is constant?
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According to bohrs theory of hydrogen atom the speed vn of electron in...
Bohr's Theory of Hydrogen Atom
In Bohr's theory of the hydrogen atom, the speed of the electron in a stable orbit is related to the principal quantum number (n) through a constant value (c). This relationship can be explained in detail as follows:

Speed of Electron in Orbit
- In Bohr's model, electrons orbit the nucleus in circular paths at specific distances known as energy levels or orbits.
- The speed of the electron in a stable orbit is determined by the balance between the centripetal force required to keep the electron in its orbit and the electrostatic force of attraction between the electron and the nucleus.

Relationship with Principal Quantum Number (n)
- The principal quantum number (n) in an atom specifies the energy level of the electron and the size of the orbit.
- According to Bohr, the speed of the electron in a stable orbit is inversely proportional to the principal quantum number (n). This means that as n increases, the speed of the electron decreases.
- The relationship can be mathematically expressed as vn = c/n, where c is a constant value.

Implications of the Relationship
- This relationship implies that electrons in higher energy levels have lower speeds compared to electrons in lower energy levels.
- It also suggests that electrons closer to the nucleus (lower energy levels) move at higher speeds than electrons in outer orbits.
- Understanding the speed of electrons in stable orbits is crucial for explaining the stability and behavior of atoms in the context of quantum mechanics.
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According to bohrs theory of hydrogen atom the speed vn of electron in...
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The only electron in the hydrogen atom resides under ordinary conditions on the first orbit. When energy is supplied, the electron moves to higher energy orbit depending on the amount of energy absorbed. When this electron returns to any of the lower orbits, it emits energy. Lyman series is formed when the electron returns to the lowest orbit while Balmer series is formed when the electron returns to second orbit. Similarly, Paschen, Brackett and Pfund series are formed when electron returns to the third, fourth and fifth orbits from higher energy orbits respectively. Maximum number of lines produced when an electron jumps from nth level to ground level is equal to . For examle, in the case of n = 4, number of lines produced is 6. (4 3, 4 2, 4 1, 3 2, 3 1, 2 1). When an electron returns from n2 to n1 state, the number of lines in the spectrum will be equal toIf the electron comes back from energy level having energy E2 to energy level having energy E1, then the difference may be expressed in terms of energy of photon as :Since h and c are constants, E corresponds to definite energy; thus each transition from one energy level to another will produce a light of definite wavelength. This is actually observed as a line in the spectrum of hydrogen atom.Wave number of line is given by the formulawhere R is a Rydbergs constant(R = 1.1 107 m-1)Q.The wave number of electromagnetic radiation emitted during the transition of electron in between two levels of Li2+ ion whose principal quantum numbers sum is 4 and difference is 2 is

The only electron in the hydrogen atom resides under ordinary conditions on the first orbit. When energy is supplied, the electron moves to higher energy orbit depending on the amount of energy absorbed. When this electron returns to any of the lower orbits, it emits energy. Lyman series is formed when the electron returns to the lowest orbit while Balmer series is formed when the electron returns to second orbit. Similarly, Paschen, Brackett and Pfund series are formed when electron returns to the third, fourth and fifth orbits from higher energy orbits respectively. Maximum number of lines produced when an electron jumps from nth level to ground level is equal to . For examle, in the case of n = 4, number of lines produced is 6. (4 3, 4 2, 4 1, 3 2, 3 1, 2 1). When an electron returns from n2 to n1 state, the number of lines in the spectrum will be equal toIf the electron comes back from energy level having energy E2 to energy level having energy E1, then the difference may be expressed in terms of energy of photon as :Since h and c are constants, E corresponds to definite energy; thus each transition from one energy level to another will produce a light of definite wavelength. This is actually observed as a line in the spectrum of hydrogen atom.Wave number of line is given by the formulawhere R is a Rydbergs constant(R = 1.1 107 m-1)Q.In a collection of Hatom, electrons make transition from 5th excited state to 2nd excited state then maximum number of different types of photons observed are

According to bohrs theory of hydrogen atom the speed vn of electron in a stable orbit is related to principal quantum number n as c is constant?
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