Electron emission in intense electric fields
1928/05/01 by Ralph Howard Fowler, L. W. Nordheim · 32 citations
Materials Science · Mathematics · Physics and Astronomy · #Advanced Thermodynamics and Statistical Mechanics #Carbon Nanotubes in Composites #Electric field #Electron #Epistemology #Exposition (narrative) #Field (mathematics) #Mathematics #Mechanical and Optical Resonators #Philosophy #Physics #Pure mathematics #Quantum mechanics #Simple (philosophy) #Theoretical physics
paper · doi:10.1098/rspa.1928.0091
openalex publication_date 1928/05/01 · openalex created_date 2016/06/24 · openalex updated_date 2026/08/04
Abstract
Abstract 1. Introduction.—The main features of the phenomenon of the extraction of electrons from cold metals by intense electric fields are well known, and an approximate theory of the effect was first developed by Schottky. More recently the experimental data have been much improved, notably by Millikan and Eyring, and Millikan and Lauritsen. The theory has been considered afresh by O. W. Richardson and by Houston working with Sommerfeld. It seems to us, however, that there is still room for improvement in the theoretical exposition and its correlation with the experiments. Neither O. W. Richardson nor Houston really treat the theory in the simple straightforward way which is now possible in the new mechanics, using the revived electron theory of metals which we owe to Sommerfeld. Again, while Millikan and Lauritsen seem to have established quite definitely the laws of dependence of the emission on the field strength F, they speak of the implications of their result in a way which is hard to justify and might in certain circumstances prove to be definitely misleading. Millikan and Lauritsen show that a plot of log I, where I is the current, against 1/F yields a good straight line whenever the experimental conditions are sufficiently stable. At ordinary temperatures these currents are completely independent of the temperature. The formula for these current is I = Ce─a/F, (1) Which is, of course, indistinguishable from I = CF2e─a/F. (2) Millikan and his associates have also shown that as the higher temperatures, at which ordinary thermionic emission begins, are approached, the strong field emission does become sensitive to temperature and finally blends into the thermionic.
Cited by
- Theoretical evaluation of electronic density-of-states and transport effects on field emission from n-type ultrananocrystalline diamond films
- A primer for resonant tunnelling
- Novel cold cathode materials and applications
- Theoretical Total-Energy Distribution of Field-Emitted Electrons
- On the need for a tunneling pre-factor in Fowler–Nordheim tunneling theory
- Recent Advances in Field Electron Microscopy of Metals
- Use of energy‐space diagrams in free‐electron models of field electron emission
- Field emission from crystalline niobium
- Thermionic Emission
- Field Emission Energy Distribution (FEED)
- Space-Charge Effects in Field Emission
- Description of field emission current/voltage characteristics in terms of scaled barrier field values (f-values)
- A general computational method for electron emission and thermal effects in field emitting nanotips
- Field Emission: Large Current Densities, Space Charge, and the Vacuum Arc
- Reformulation of the standard theory of Fowler–Nordheim tunnelling and cold field electron emission
- Carbon nanotube electron sources and applications
- Field Emission
- The formal derivation of an exact series expansion for the principal Schottky–Nordheim barrier functionv, using the Gauss hypergeometric differential equation
- Exact analysis of surface field reduction due to field-emitted vacuum space charge, in parallel-plane geometry, using simple dimensionless equations
- Thermionic Emission, Field Emission, and the Transition Region
- The roles of apex dipoles and field penetration in the physics of charged, field emitting, single-walled carbon nanotubes
- Physical properties of thin-film field emission cathodes with molybdenum cones
- Theory of Field Emission from Semiconductors
- Call for experimental test of a revised mathematical form for empirical field emission current-voltage characteristics
- Theoretical analysis of field emission data
- Derivation of a generalized Fowler–Nordheim equation for nanoscopic field-emitters
- Physics of generalized Fowler-Nordheim-type equations
- Scale invariance of a diodelike tunnel junction
- Electron Field Emission from Atom-Sources: Fabrication, Properties, and Applications of Nanotips
- Field Emission from Luttinger Liquids and Single-Wall Carbon Nanotubes
- Formation of double ring patterns on Co2MnSi Heusler alloy thin film by anodic oxidation under scanning probe microscope
- Field electron emission [wikipedia]