Javascript must be enabled to continue!
Thermionic emission laws for general electron dispersion relations and band structure data
View through CrossRef
In this article, a thermionic electron emission theory for general electron dispersion relations E(k) is presented, relating electron energy E to wave-vector magnitude k = |k|. This theory does not require the construction of a model Hamiltonian for the electrode's materials, like Dirac or Weyl Hamiltonians. Instead, use is made of the material's band structure data, e.g., the parabolic E(k) approximation for the Richardson–Dushman equation and linear E(k), as used for graphene and 3D Dirac semimetals. This new theory confirms previous findings on parabolic E(k), e.g., that the emission current is independent of effective electron mass in the material as long as it is larger than real electron mass m0. For effective mass lower than m0, the emission is reduced and tends to zero for vanishing effective mass. For materials with negative electron affinity, additional terms arise in the emission current equation. It turns out that the linear E(k) dispersion, e.g., for Dirac semimetals, does not have the potential to surpass the Richardson emission in materials with the same work function. In addition, a more rigorous electron emission theory is established by utilizing real anisotropic band structure data En(k) for electrode materials. For collimated electron emission normal to the surface, the transverse electron velocities tend to zero, i.e., the transverse derivatives of En(k) have to be comparatively small. If stable electrode materials of this kind can be realized, a considerable increase of electron emission by a factor 100 or more can be achieved, compared to the Richardson–Dushman theory, especially for small lattice constants perpendicular to the emission direction.
Title: Thermionic emission laws for general electron dispersion relations and band structure data
Description:
In this article, a thermionic electron emission theory for general electron dispersion relations E(k) is presented, relating electron energy E to wave-vector magnitude k = |k|.
This theory does not require the construction of a model Hamiltonian for the electrode's materials, like Dirac or Weyl Hamiltonians.
Instead, use is made of the material's band structure data, e.
g.
, the parabolic E(k) approximation for the Richardson–Dushman equation and linear E(k), as used for graphene and 3D Dirac semimetals.
This new theory confirms previous findings on parabolic E(k), e.
g.
, that the emission current is independent of effective electron mass in the material as long as it is larger than real electron mass m0.
For effective mass lower than m0, the emission is reduced and tends to zero for vanishing effective mass.
For materials with negative electron affinity, additional terms arise in the emission current equation.
It turns out that the linear E(k) dispersion, e.
g.
, for Dirac semimetals, does not have the potential to surpass the Richardson emission in materials with the same work function.
In addition, a more rigorous electron emission theory is established by utilizing real anisotropic band structure data En(k) for electrode materials.
For collimated electron emission normal to the surface, the transverse electron velocities tend to zero, i.
e.
, the transverse derivatives of En(k) have to be comparatively small.
If stable electrode materials of this kind can be realized, a considerable increase of electron emission by a factor 100 or more can be achieved, compared to the Richardson–Dushman theory, especially for small lattice constants perpendicular to the emission direction.
Related Results
Effect of Sc<sub>2</sub>O<sub>3</sub> doping on thermal emission properties of rare-earth refractory yttrium salt cathode
Effect of Sc<sub>2</sub>O<sub>3</sub> doping on thermal emission properties of rare-earth refractory yttrium salt cathode
To improve the thermionic emission performance of the rare-earth refractory yttrium salt cathode used in the magnetron, the influence of Sc<sub>2</sub>O<sub>3<...
Spin-wave band gaps created by rotating square rods in triangular lattice magnonic crystals
Spin-wave band gaps created by rotating square rods in triangular lattice magnonic crystals
Recently, magnonic crystals which are the magnetic counterparts of photonic crystals or phononic crystals are becoming a hot area of research. In this paper, band structure of two-...
Isolation, characterization and semi-synthesis of natural products dimeric amide alkaloids
Isolation, characterization and semi-synthesis of natural products dimeric amide alkaloids
Isolation, characterization of natural products dimeric amide alkaloids from roots of the Piper chaba Hunter. The synthesis of these products using intermolecular [4+2] cycloaddit...
Modeling Performance of Hybrid Thermionic-Thermoelectric Power Systems for Space Applications
Modeling Performance of Hybrid Thermionic-Thermoelectric Power Systems for Space Applications
Abstract
Current radioisotope power system technologies for deep space applications rely on thermoelectric energy conversion to convert heat into electrical power. H...
Dispersion Compensation in Optical Fiber: A Review
Dispersion Compensation in Optical Fiber: A Review
A cylindrical-shaped dielectric waveguide is what an optical fiber is. The core-cladding interface confines light, as electromagnetic (EM) energy, within its surface and guides lig...
Laws of Nature
Laws of Nature
The discovery of the laws of nature has long been considered a principal aim of science. Of course, many laws that science discovers are not commonly designated “laws.” Alongside B...
Temperature dependent electrical behaviour of Cu2SnS3 films
Temperature dependent electrical behaviour of Cu2SnS3 films
The temperature dependent electrical properties of the dropcasted Cu2SnS3 films have been measured in the temperature range 140 K to 317 K. The log I versus √V plot shows two regio...
The West Point Band's Wind Commissioning Project in Celebration of the Bicentennial of the United States Military Academy
The West Point Band's Wind Commissioning Project in Celebration of the Bicentennial of the United States Military Academy
The United States Military Academy Band, also known as the West Point Band is the oldest active band in the United States Army and the oldest unit at the United States Military Aca...

