/*! This file is auto-generated */ .wp-block-button__link{color:#fff;background-color:#32373c;border-radius:9999px;box-shadow:none;text-decoration:none;padding:calc(.667em + 2px) calc(1.333em + 2px);font-size:1.125em}.wp-block-file__button{background:#32373c;color:#fff;text-decoration:none} Q34P The wavelength of the Kα line ... [FREE SOLUTION] | 91Ó°ÊÓ

91Ó°ÊÓ

The wavelength of the Kαline from iron is 193 pm. What is the energy difference between the two states of the iron atom that give rise to this transition?

Short Answer

Expert verified

The energy difference between the two states of the iron atom that give rise to this transition is 6.44 keV.

Step by step solution

01

The given data:

The wavelength of the Kαline from iron, λ=193pm=193×10-12m

02

Understanding the concept of magnetic resonance

One electron-volt kinetic energy is acquired by an electron or proton working at a potential change of one volt. In terms of cost and potential difference, the cost formula is

E=eV

Photon energy is the energy carried by a single photon. The amount of energy is directly proportional to the magnetic frequency of the photon and thus, equally, equates to the wavelength of the wave. When the frequency of photons is high, its potential is high.

Formulas:

The kinetic energy gained by the electron is,

ΔE=eV ….. (1)

Here, e is the charge and V is the accelerating potential difference.

The energy of the photon due to Planck’s relation is,

E=hf

E=hcλ ….. (2)

Here, h is the Plank’s constant, c is the speed of light, f is the frequency, and λis the wavelength.

03

Calculation of the energy difference between two states of the iron atom:

Consider the known data as below.

The Plank’s constant,h=6.63×10-34J⋅s

The speed of light,c=3×108ms

The charge,e=1.6×10-19JeV

Using the given data in equation (1), the energy difference for the line between the two states of the iron atom as follows:

∆E=6.63×10-34J.s3×108m/s193×10-12m1.6×10-19J/eV=6.44keV

Hence, the value of the energy difference is 6.44 keV.

Unlock Step-by-Step Solutions & Ace Your Exams!

  • Full Textbook Solutions

    Get detailed explanations and key concepts

  • Unlimited Al creation

    Al flashcards, explanations, exams and more...

  • Ads-free access

    To over 500 millions flashcards

  • Money-back guarantee

    We refund you if you fail your exam.

Over 30 million students worldwide already upgrade their learning with 91Ó°ÊÓ!

One App. One Place for Learning.

All the tools & learning materials you need for study success - in one app.

Get started for free

Most popular questions from this chapter

Figure 40-21 shows partial energy-level diagrams for the helium and neon atoms that are involved in the operation of a helium–neon laser. It is said that a helium atom in stateE3 can collide with a neon atom in its ground state and raise the neon atom to state E2. The energy of helium state E3(20.61eV)is close to, but not exactly equal to, the energy of neon state role="math" localid="1661494292758" E2(20.66eV). How can the energy transfer take place if these energies are not exactly equal?

Two of the three electrons in a lithium atom have quantum numbers (n,I,mI,ms)of (1,0,0,+12)and (1,0,0,-12). What quantum numbers are possible for the third electron if the atom is (a) in the ground state and (b) in the first excited state?

For a helium atom in its ground state, what are quantum numbers (n,l,mI,ms) for the (a) spin-up electron and (b) spin-down electron?

Excited sodium atoms emit two closely spaced spectrum lines called the sodium doublet(Fig. 40-27) with wavelengths 588.995 nm and 589.592 nm. (a) What is the difference in energy between the two upper energy levels (n = 3, I = 1)? (b) This energy difference occurs because the electron’s spin magnetic moment can be oriented either parallel or anti-parallel to the internal magnetic field associated with the electron’s orbital motion. Use your result in (a) to find the magnitude of this internal magnetic field.

Suppose two electrons in an atom have quantum numbers n = 2 and l = 1 . (a) How many states are possible for those two electrons? (Keep in mind that the electrons are indistinguishable.) (b) If the Pauli Exclusion Principle did not apply to the electrons, how many states would be possible?

See all solutions

Recommended explanations on Physics Textbooks

View all explanations

What do you think about this solution?

We value your feedback to improve our textbook solutions.

Study anywhere. Anytime. Across all devices.