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Metal-Air Transistors: Semiconductor-Free Field-Emission Air-Channel Nanoelectronics.
Nirantar, Shruti; Ahmed, Taimur; Ren, Guanghui; Gutruf, Philipp; Xu, Chenglong; Bhaskaran, Madhu; Walia, Sumeet; Sriram, Sharath.
Affiliation
  • Nirantar S; Functional Materials and Microsystems Research Group and the Micro Nano Research Facility , RMIT University , Melbourne , VIC 3000 , Australia.
  • Ahmed T; Functional Materials and Microsystems Research Group and the Micro Nano Research Facility , RMIT University , Melbourne , VIC 3000 , Australia.
  • Ren G; Functional Materials and Microsystems Research Group and the Micro Nano Research Facility , RMIT University , Melbourne , VIC 3000 , Australia.
  • Gutruf P; Functional Materials and Microsystems Research Group and the Micro Nano Research Facility , RMIT University , Melbourne , VIC 3000 , Australia.
  • Xu C; Functional Materials and Microsystems Research Group and the Micro Nano Research Facility , RMIT University , Melbourne , VIC 3000 , Australia.
  • Bhaskaran M; Functional Materials and Microsystems Research Group and the Micro Nano Research Facility , RMIT University , Melbourne , VIC 3000 , Australia.
  • Walia S; Functional Materials and Microsystems Research Group and the Micro Nano Research Facility , RMIT University , Melbourne , VIC 3000 , Australia.
  • Sriram S; Functional Materials and Microsystems Research Group and the Micro Nano Research Facility , RMIT University , Melbourne , VIC 3000 , Australia.
Nano Lett ; 18(12): 7478-7484, 2018 12 12.
Article in En | MEDLINE | ID: mdl-30441900
ABSTRACT
Scattering-free transport in vacuum tubes has always been superior to solid-state transistors. It is the advanced fabrication with mass production capability at low cost which drove solid-state nanoelectronics. Here, we combine the best of vacuum tubes with advanced nanofabrication technology. We present nanoscale, metal-based, field emission air channel transistors. Comparative analysis of tungsten-, gold-, and platinum-based devices is presented. Devices are fabricated with electron beam lithography, achieving channel lengths less than 35 nm. With this small channel length, vacuum-like carrier transport is possible in air under room temperature and pressure. Source and drain electrodes have planar, symmetric, and sharp geometry. Because of this, devices operate in bidirection with voltages <2 V and current values in few tens of nanoamperes range. The experimental data shows that influential operation mechanism is Fowler-Nordheim tunnelling in tungsten and gold devices, while Schottky emission in platinum device. The presented work enables a technology where metal-based switchable nanoelectronics can be created on any dielectric surface with low energy requirements.
Key words

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Nano Lett Year: 2018 Document type: Article Affiliation country: Australia

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Nano Lett Year: 2018 Document type: Article Affiliation country: Australia
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