Literature DB >> 26057303

Highly Conductive Diamond-Graphite Nanohybrid Films with Enhanced Electron Field Emission and Microplasma Illumination Properties.

Adhimoorthy Saravanan1, Bohr-Ran Huang1, Kamatchi Jothiramalingam Sankaran2,3, Nyan-Hwa Tai2, I-Nan Lin4.   

Abstract

Bias-enhanced nucleation and growth of diamond-graphite nanohybrid (DGH) films on silicon substrates by microwave plasma enhanced chemical vapor deposition using CH4/N2 gas mixture is reported herein. It is observed that by controlling the growth time, the microstructure of the DGH films and, thus, the electrical conductivity and the electron field emission (EFE) properties of the films can be manipulated. The films grown for 30 min (DGHB30) possess needle-like geometry, which comprised of a diamond core encased in a sheath of sp(2)-bonded graphitic phase. These films achieved high conductivity of σ = 900 S/cm and superior EFE properties, namely, low turn-on field of 2.9 V/μm and high EFE current density of 3.8 mA/cm(2) at an applied field of 6.0 V/μm. On increasing the growth time to 60 min (the DGHB60), the acicular grain growth ceased and formed nanographite clusters or defective diamond clusters (n-diamond). Even though DGHB60 films possess higher electrical conductivity (σ = 1549 S/cm) than the DGHB30 films, the EFE properties degraded. The implication of this result is that higher conductivity by itself does not guarantee better EFE properties. The nanosized diamond grains with needle-like geometry are the most promising ones for the electron emission, exclusively when they are encased in graphene-like layers. The salient feature of such materials with unique granular structure is that their conductivity and EFE properties can be tuned in a wide range, which makes them especially useful in practical applications.

Entities:  

Keywords:  diamond−graphite nanohybrid films; electron field emission; growth time; microplasma illumination; microstructure; negative bias

Year:  2015        PMID: 26057303     DOI: 10.1021/acsami.5b03166

Source DB:  PubMed          Journal:  ACS Appl Mater Interfaces        ISSN: 1944-8244            Impact factor:   9.229


  2 in total

1.  Human Exhalation CO2 Sensor Based on the PEI-PEG/ZnO/NUNCD/Si Heterojunction Electrode.

Authors:  Ching Chang; Chi-Young Lee; Nyan-Hwa Tai
Journal:  ACS Omega       Date:  2022-04-25

2.  Low Temperature Synthesis of Lithium-Doped Nanocrystalline Diamond Films with Enhanced Field Electron Emission Properties.

Authors:  Kamatchi Jothiramalingam Sankaran; Kalpataru Panda; Ping-Yen Hsieh; Paulius Pobedinskas; Jeong Young Park; Marlies K Van Bael; Nyan-Hwa Tai; I-Nan Lin; Ken Haenen
Journal:  Nanomaterials (Basel)       Date:  2018-08-24       Impact factor: 5.076

  2 in total

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