Higher order curvature corrections to the field emission current density
arXiv:2103.10075 · doi:10.1063/5.0050743
Abstract
A simple expression for the Gamow factor is obtained using a second order curvature corrected tunneling potential. Our results show that it approximates accurately the `exact-WKB' transmission coefficient obtained by numerically integrating over the tunneling region to obtain the Gamow factor. The average difference in current density using the respective transmission coefficients is about , across a range of work-functions eV, Fermi energy in [5-10]eV, local electric fields in[3-9]eV and radius of curvature nm). An easy-to-use correction factor is also provided to approximately map the `exact-WKB' current density to the `exact' current density in terms of . The average error on using is found to be around . This is a vast improvement over the average error of when . Finally, an analytical expression for the curvature-corrected current density is obtained using the Gamow factor. It is found to compare well with the `exact-WKB' current density even at small values of local electric field and radius of curvature.
8 pages
References in corpus (3)
Cited by in corpus (7)
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- Gamow factors and current densities in cold field emission theory: a comparative study
- Semi-analytical theory of emission and transport in a LAFE-based diode
- Approximate universality in the electric field variation on a field-emitter tip in the presence of space charge