Field emission in vacuum resonant tunneling heterostructures with high current densities

AbstractWe analyse the steady-state thermal regime of a one-dimensional triode resonant tunnelling structure. The high currents generated by resonant tunnelling produce a large amount of heat that could damage the structure. Establishing the conditions under which it can operate at optimum efficiency is therefore a problem of great relevance for applications. The tunnel current is found via eigenvalues of the Schrödinger equation in quantum wells. By calculating the current generated in the device and using the energy conservation law in the electrodes, the temperature reached is obtained for different types of electrodes and the importance of heat conduction and thermal radiation is analysed. In the cases discussed, conduction is dominant. When the electrode material is copper, the temperature reached is similar to that of the thermostat for a wide range of electrode lengths, whereas when the cathode material is diamond-graphite and the anode material is copper, the temperature increases significantly as a function of length. The results obtained allow the temperature to be controlled for optimum performance of the field-emitting triode structures.

Authors
Davidovich M.V.1 , Nefedov I.S. 1, 2 , Glukhova O.E.1, 3 , Slepchenkov M.M.1 , Rubi J.M.4
Publisher
Nature Publishing Group
Number of issue
1
Language
English
Pages
19365
Status
Published
Volume
13
Year
2023
Organizations
  • 1 Saratov State University
  • 2 RUDN University
  • 3 I.M. Sechenov First Moscow State Medical University
  • 4 University of Barcelona
Keywords
Applied Physics; Electronics, photonics and device physics; science; humanities and social sciences; multidisciplinary
Date of creation
01.07.2024
Date of change
01.07.2024
Short link
https://repository.rudn.ru/en/records/article/record/109985/
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