Shape of Potential & Wave Vector 'K': Explained

In summary, the conversation discusses the various shapes of potentials, including rectangular, square well, and well type, and how the shape of a potential is determined. It is mentioned that the shape of the nucleus potential is approximately parabolic in light nuclei and often modeled as a square well with Coulomb repulsion in heavy nuclei like uranium. The significance of the wave vector 'K' and K-space in band theory is also brought up, with the understanding that it represents the direction of wave propagation and is proportional to the momentum of the wave.
  • #1
photon79
60
0
shapes of potentials!

Hi all..

1)we have,for example,rectangular, square well, well type etc potentials. How is the shape of a potential is determined? What is the shape of the nucleus potential?

2)I am unable to get the physical importence of the wave vector 'K' and K-space in band theory!
 
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  • #2
photon79 said:
1) What is the shape of the nucleus potential?
In light nuclei it as approximately parabolic.

In heavy nuclei (uranium), alpha particles are often modeled as moving in a square well + Coulomb repulsion.
2)I am unable to get the physical importence of the wave vector 'K' and K-space in band theory!
Ask your teacher to explain it one more time.
 
  • #3
The wave vector k is identically to: abs(k)=2pi/lambda and momentum=h(bar)k. So you can think of it as the inverse of the wave length of a wave. Its more confortable to write psy(x)=exp(kx) than psy(x)=exp(2pi/lambda*x).
If we work in more dimensions k must be a vector and as you can see in the wave function lambda must therefor also be a vector. And 2pi/VECTOR seems to look strange.

You see?
 
  • #4
The k-vector gives the direction of wave propagation. The magnitude of k is proportional to the momentum of the wave, which as we know is related to the wavelength.

Claude.
 

What is the "Shape of Potential" in relation to wave vector 'K'?

The shape of potential refers to the physical or mathematical representation of the potential energy of a system. In the context of wave vector 'K', it describes the spatial distribution of the potential energy in a crystal lattice, which is represented by a periodic potential function.

How does the "Shape of Potential" affect the properties of a material?

The shape of potential can greatly influence the electronic and structural properties of a material. In a crystal lattice, the shape of potential determines the allowed energy levels and band structure, which in turn affect properties such as conductivity, optical properties, and thermal properties.

What is the significance of the "Wave Vector 'K'" in materials science?

In materials science, the wave vector 'K' plays a crucial role in understanding the behavior of electrons in a crystal lattice. It represents the momentum of an electron in the crystal and is used to describe the periodicity of the lattice potential and the energy levels of the electrons.

How is the "Shape of Potential" related to the "Wave Vector 'K'"?

The shape of potential and the wave vector 'K' are closely related as they both describe the properties of electrons in a crystal lattice. The shape of potential determines the allowed energy levels, while the wave vector 'K' describes the momentum of the electrons in the lattice potential.

Why is it important to understand the "Shape of Potential" and "Wave Vector 'K'" in materials science?

Understanding the shape of potential and wave vector 'K' is crucial in materials science as it allows us to predict and control the electronic and structural properties of materials. This knowledge is essential for the development of new materials with desired properties for various applications.

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