Question

if the effective mass of an electron is m* = fm which is the temperature at...

if the effective mass of an electron is m* = fm which is the temperature at which is has to be cooled down in order for magnetic oscillations to appear?

Homework Answers

Know the answer?
Your Answer:

Post as a guest

Your Name:

What's your source?

Earn Coins

Coins can be redeemed for fabulous gifts.

Not the answer you're looking for?
Ask your own homework help question
Similar Questions
A relativistic electron has a de Broglie wavelength of 646 fm (1 fm = 10−15 m)....
A relativistic electron has a de Broglie wavelength of 646 fm (1 fm = 10−15 m). 1) Determine its velocity
A metal has a mass density ρ = 8.95 g/cm3 . Assuming the effective mass of...
A metal has a mass density ρ = 8.95 g/cm3 . Assuming the effective mass of electron in the metal m*=0.5m0. The electron rest mass m0 = 9.11×10-31 kg. The atomic mass is 63.5, Avogadro’s number is 6.022×1023 . The Boltzmann constant kB = 1.38×10-23 J/K = 8.62×10-5 eV/K. The reduced Planck constant ћ = 1.55×10-34 J·s. Calculate the following assuming the periodic boundary condition. (a) the concentration of the conduction electrons (assume that each Copper atom has one electron...
An electron (mass 9.11x kg) travels at 2x10^5 m/s to the left. A magnetic field of...
An electron (mass 9.11x kg) travels at 2x10^5 m/s to the left. A magnetic field of magnitude 1.2 T points out of the page. a) What is the force (magnitude and direction) on the electron? b) What is the acceleration of the electron? c) If the magnetic field is uniform in this region, the electron will follow a circular path. What is the radius of the circle? Please enter your answers in the space below and email your work
An electron moves at 2.70×106 m/s through a region in which there is a magnetic field...
An electron moves at 2.70×106 m/s through a region in which there is a magnetic field of unspecified direction and magnitude 7.10×10−2 T What is the largest possible magnitude of the acceleration of the electron due to the magnetic field IN M/S^2?)
An electron moves at 2.50 x 106 m/s through a region in which there is a...
An electron moves at 2.50 x 106 m/s through a region in which there is a magnetic field of unspecified direction and magnitude 7.40 x 10-2 T. (a) What is the smallest possible magnitude of the acceleration of the electron due to the magnetic field?(1.5 marks) (b) What is the largest possible magnitude of the acceleration of the electron due to the magnetic field? (c) If the actual acceleration of the electron is one-fourth of the largest magnitude in part...
Consider an n-doped semiconductor with an effective electron mass equal to one half the free electron...
Consider an n-doped semiconductor with an effective electron mass equal to one half the free electron mass, and a dielectric constant of 2. Which of the following statements is correct? More than one is correct A. The impurity will look like a hydrogen atom, but with a hole circling it instead of an electron B. The impurities will look like Hydrogen atoms, but smaller in size than a Hydrogen atom in free space C. The impurity will look like a...
Ferromagnetism and exchange interaction.  Consider dysprosium (Dy), which is a rare earth metal with a density of...
Ferromagnetism and exchange interaction.  Consider dysprosium (Dy), which is a rare earth metal with a density of 8.54 g/cm and atomic mass of 162.50 g/mol.  The isolated atom has the electron structure [Xe]4f106s2.   (a) What is the spin magnetic moment in the isolated atom in terms of Bohr magnetons?   (b) If the saturation magnetization of Dy near absolute zero temperature is 2.4 MA/m, what is the effective number of spins per atom in the ferromagnetic state?   (c) How does this compare to...
An electron of mass 9.11×1031 kg has an initial speed of 3.00×105 m/s. It travels in...
An electron of mass 9.11×1031 kg has an initial speed of 3.00×105 m/s. It travels in a straight line, and its speed increases to 7.00×105 m/s in a distance of 5.00 cm. Assuming its acceleration is constant, (a) determine the force exerted on the electron and (b) compare this force with the weight of the electron, which we neglected.
1) A mass spectrometer was used in the discovery of the electron. In the velocity selector,...
1) A mass spectrometer was used in the discovery of the electron. In the velocity selector, the electric and magnetic fields are set to only allow electrons with a specific velocity to exit the fields. The electrons then enter an area with only a magnetic field, where the electron beam is deflected in a circular shape with a radius of 8.0 mm. In the velocity selector, E = 400.0 V/m and B = 4.7 x 10-4 T. The same value...
Observing the electron beam from the front of the apparatus, which way does it curve under...
Observing the electron beam from the front of the apparatus, which way does it curve under the influence of the magnetic field (clockwise or counterclockwise)? Based on this, in which direction must the magnetic field produced by the coils be pointing? Justify your answer. (We used a Helmholtz coil e/m apparatus to measure the charge to mass ratio for an election by producing a magnetic field perpendicular to the direction of the travel of the electrons)