# On the quantum mechanics of how an ideal carbon nanotube field emitter   can exhibit a constant field enhancement factor

**Authors:** Caio P. de Castro, Thiago A. de Assis, Roberto Rivelino, Fernando de, B. Mota, Caio M. C. de Castilho, Richard G. Forbes

arXiv: 1907.07539 · 2020-01-08

## TL;DR

This paper demonstrates that quantum mechanical calculations of induced charge densities and local fields in carbon nanotubes can explain the experimentally observed constant field enhancement factor, resolving a long-standing discrepancy.

## Contribution

It shows that using induced charge-density distributions from density functional theory aligns quantum models with experimental observations of CNT emission.

## Key findings

- Quantum calculations of induced charge densities match experimental FEFs.
- Agreement achieved between classical, experimental, and quantum models.
- Highlights importance of induced charges in CNT emission analysis.

## Abstract

Measurements of current-voltage characteristics from ideal carbon nanotube (CNT) field electron emitters of small apex radius have shown that these emitters can exhibit a linear Fowler-Nordheim (FN) plot [e.g., Dean and Chalamala, Appl. Phys. Lett., 76, 375, 2000]. From such a plot, a constant (voltage-independent) characteristic field enhancement factor (FEF) can be deduced. Over fifteen years later, this experimental result has not yet been convincingly retrieved from first-principles electronic structure calculations, or more generally from quantum mechanics (QM). On the contrary, several QM calculations have deduced that the characteristic FEF should be a function of the macroscopic field applied to the CNT. This apparent contradiction between experiment and QM theory has been an unexplained feature of CNT emission science, and has raised doubts about the ability of existing QM models to satisfactorily describe experimental CNT emission behavior. In this work we demonstrate, by means of a density functional theory analysis of single-walled CNTs "floating" in an applied macroscopic field, the following significant result. This is that agreement between experiment, classical-conductor CNT models and QM calculations can be achieved if the latter are used to calculate (from the "real" total-charge-density distributions initially obtained) the distributions of $\textit{induced}$ charge-density, induced local fields and induced local FEFs. The present work confirms, more reliably and in significantly greater detail than in earlier work on a different system, that this finding applies to the common "post-on-a-conducing plane" situation of CNT field electron emission. This finding also brings out various further theoretical questions that need to be explored.

## Full text

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## Figures

6 figures with captions in the complete paper: https://tomesphere.com/paper/1907.07539/full.md

## References

29 references — full list in the complete paper: https://tomesphere.com/paper/1907.07539/full.md

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Source: https://tomesphere.com/paper/1907.07539