2006
DOI: 10.1002/pssa.200566101
|View full text |Cite
|
Sign up to set email alerts
|

Carbon nanotubes as electron sources

Abstract: Carbon nanotubes (CNTs) are a unique form of carbon filament/fiber in which the graphene walls roll up to form tubes. They can exhibit either metallic-like or semiconductor-like properties. With the graphene walls parallel to the filament axis, nanotubes (single wall metallic-type or multi-wall) exhibit high electrical conductivity at room temperature. This high electrical conductivity allied to their remarkable thermal stability has made CNTs one of the most intensely studied material systems for field emissi… Show more

Help me understand this report

Search citation statements

Order By: Relevance

Paper Sections

Select...
2
1
1
1

Citation Types

0
16
0

Year Published

2008
2008
2018
2018

Publication Types

Select...
5
3
1

Relationship

0
9

Authors

Journals

citations
Cited by 37 publications
(20 citation statements)
references
References 11 publications
0
16
0
Order By: Relevance
“…This artifact, however, does not limit the experimental detail reported here as our purpose is to investigate the spatially variation trend in β with CN pitch. <β array > for the 1, 2, 6, 8 and 10 µm pitch arrays were 95, 143, 196, 261 and 278 respectively, clearly demonstrating that the more closely packed CNs exhibit a reduction in β array due to enhanced nearest neighbor electrostatic shielding, as originally predicted by112021. As the CNs become increasingly close-packed adjacent CNs begin to reduce the penetration depth of the equi-potentials.…”
Section: Resultsmentioning
confidence: 55%
“…This artifact, however, does not limit the experimental detail reported here as our purpose is to investigate the spatially variation trend in β with CN pitch. <β array > for the 1, 2, 6, 8 and 10 µm pitch arrays were 95, 143, 196, 261 and 278 respectively, clearly demonstrating that the more closely packed CNs exhibit a reduction in β array due to enhanced nearest neighbor electrostatic shielding, as originally predicted by112021. As the CNs become increasingly close-packed adjacent CNs begin to reduce the penetration depth of the equi-potentials.…”
Section: Resultsmentioning
confidence: 55%
“…1͑f͔͒, synthesized by plasma enhanced chemical vapor deposition ͑PECVD͒, 5 are highly compatible with microfabrication, thereby facilitating their incorporation as functional nanostructured components of a large variety of devices. Demonstrated CNF applications include electron field emitters, [16][17][18][19] charge and hydrogen storage media, 20,21 composite materials, 22,23 biosensors, 8,9,24,25 gene delivery arrays, [26][27][28][29] synthetic membrane structures, 30,31 electrochemical probes, 13,32,33 electrodes for neuronal interface, 34,35 and scanning probe microscopy ͑SPM͒ tips. [36][37][38] The structure and surface chemistry of the nanofibers play a crucial role in the performance characteristics of these nanofiber-based devices.…”
Section: Introductionmentioning
confidence: 99%
“…The focussed spot diameter (d T ) is therefore composed of a number of contributing sources where their diameters can be simply expressed as the original source of emitted electrons (d o ), the chromatic . All of these sources are from the author's research group at the University of York [11][12][13] aberration (d C ), spherical aberration (d S ) and diffraction effects (d D ). These contributions could be added in the following manner:…”
Section: The Probe-forming Column (Electron Lenses)mentioning
confidence: 99%