Please use this identifier to cite or link to this item: http://hdl.handle.net/1942/32478
Title: Improved Field Electron Emission Properties of Phosphorus and Nitrogen Co-Doped Nanocrystalline Diamond Films
Authors: LLORET, Fernando 
KAMATCHI JOTHIRAMALINGAM, Sankaran 
Millan-Barba, Josue
DESTA, Derese 
ROUZBAHANI BAYATANI, Rozita 
POBEDINSKAS, Paulius 
Gutierrez, Marina
BOYEN, Hans-Gerd 
HAENEN, Ken 
Issue Date: 2020
Publisher: MDPI
Source: NANOMATERIALS, 10 (6) (Art N° 1024)
Abstract: Nanocrystalline diamond (NCD) field emitters have attracted significant interest for vacuum microelectronics applications. This work presents an approach to enhance the field electron emission (FEE) properties of NCD films by co-doping phosphorus (P) and nitrogen (N) using microwave plasma-enhanced chemical vapor deposition. While the methane (CH4) and P concentrations are kept constant, the N(2)concentration is varied from 0.2% to 2% and supplemented by H-2. The composition of the gas mixture is tracked in situ by optical emission spectroscopy. Scanning electron microscopy, atomic force microscopy (AFM), transmission electron microscopy, and Raman spectroscopy are used to provide evidence of the changes in crystal morphology, surface roughness, microstructure, and crystalline quality of the different NCD samples. The FEE results display that the 2% N(2)concentration sample had the best FEE properties, viz. the lowest turn-on field value of 14.3 V/mu m and the highest current value of 2.7 mu A at an applied field of 73.0 V/mu m. Conductive AFM studies reveal that the 2% N(2)concentration NCD sample showed more emission sites, both from the diamond grains and the grain boundaries surrounding them. While phosphorus doping increased the electrical conductivity of the diamond grains, the incorporation of N(2)during growth facilitated the formation of nano-graphitic grain boundary phases that provide conducting pathways for the electrons, thereby improving the FEE properties for the 2% N(2)concentrated NCD films.
Notes: Lloret, F; Haenen, K (corresponding author), Hasselt Univ, Inst Mat Res IMO, B-3590 Diepenbeek, Belgium.; Lloret, F; Haenen, K (corresponding author), IMEC VZW, IMOMEC, B-3590 Diepenbeek, Belgium.; Lloret, F (corresponding author), Univ Cadiz, Dept Fis Aplicada, Puerto Real 11510, Spain.
fernando.lloret@uca.es; Kjsankaran@immt.res.in; josmilbar@gmail.com;
Derese.desta@uhasselt.be; Rozita.rouzbahani@uhasselt.be;
Paulius.pobedinskas@uhasselt.be; marina.gutierrez@uca.es;
hansgerd.boyen@uhasselt.be; ken.haenen@uhasselt.be
Other: fernando.lloret@uca.es; Kjsankaran@immt.res.in; josmilbar@gmail.com; Derese.desta@uhasselt.be; Rozita.rouzbahani@uhasselt.be; Paulius.pobedinskas@uhasselt.be; marina.gutierrez@uca.es; hansgerd.boyen@uhasselt.be; ken.haenen@uhasselt.be
Keywords: nanocrystalline diamond;field electron emission;phosphorus;nitrogen;conductive atomic force microscopy;transmission electron microscopy
Document URI: http://hdl.handle.net/1942/32478
e-ISSN: 2079-4991
DOI: 10.3390/nano10061024
ISI #: WOS:000551681600001
Rights: © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
Category: A1
Type: Journal Contribution
Validations: ecoom 2021
Appears in Collections:Research publications

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