Nanoshaping field emitters from glassy carbon sheets: a new functionality induced by H-plasma etching.
نویسندگان
چکیده
This paper reports on the morphological and electrical characterization at the nanometer scale and the investigation of the field emission characteristics of glassy carbon (GC) plates which underwent H-induced physical/chemical processes occurring in a dual-mode MW-RF plasma reactor. Plasma treatment produced on the GC surface arrays of vertically aligned conically shaped nanostructures, with density and height depending on the plasma characteristics. Two kinds of samples obtained under two different bias regimes have been deeply analyzed using an AFM apparatus equipped with tools for electric forces and surface potential measurements. The features of electron emission via the Field Emission (FE) mechanism have been correlated with the morphology and the structure at the nanoscale of the treated glassy carbon samples. The measured current density and the characteristics of the emission, which follow the Fowler-Nordheim law, indicate that the plasma-based methodology utilized for the engineering of the GC surfaces is able to turn conventional GC plates into efficient emission devices. The outstanding properties of GC suggest the use of such nanostructured materials for the assembling of cold cathodes to be used in a harsh environment and under extreme P/T conditions.
منابع مشابه
Micromachining of Carbon Materials and Laser Micropatterning of Metal Films used as Masks for Reactive Ion Etching
Microstructured carbon materials are interesting for electrochemical systems such as micro fuel cell electrodes and flow fields. Glassy carbon (Sigradur G) can be microstructured by various methods such as sawing, laser machining, and reactive ion etching (RIE). An alternative for fuel cell applications is Sigracet, a graphite in a polymer matrix. Various laser wavelengths ranging from 308 to 1...
متن کاملFabrication and field emission property studies of multiwall carbon nanotubes
Well-aligned and randomly grown multiwall nanotubes (MWNTs) fabricated by the radio-field-induced self-bias hot-filament chemical vapour deposition method demonstrate that the growth mechanisms are either ‘tip growth’ or ‘base growth’ depending on the size of the catalyst metal particles involved. The carbon nanotubes (CNTs) can also be successfully grown on iron-like bulk alloys when preceded ...
متن کاملHydrogen etching and cutting of multiwall carbon nanotubes
The interaction of H atoms with the curved concentric graphene walls of a multiwall carbon nanotube and the stacked planar graphene sheets of graphite was investigated using a combination of high resolution transmission electron microscopy HRTEM in conjunction with electron energy-loss and Raman spectroscopies. Continuous cylindrical graphene walls of a nanotube are etched and amorphized by the...
متن کاملMultiple-Valued Computing Using Field Emission – Based Carbon Nanotube Controlled Switching
A new carbon nanotube (CNT) based controlled switch is introduced. The new CNT device is a field emission – based device that uses field electron emission from the CNT to implement the functionality of controlled switching. To implement the field emission CNT controlled switch, four field emission CNTs that have single carbon nanotubes as the emitters were tested; two with single-walled CNT and...
متن کاملRecovery of Heavy Metals from Spent Etching Waste Solution of Printed Circuit Board (PCB) Manufacturing
The process of etching is the most crucial part of the work of manufacturing printed circuit boards (PCB). In the etching process by nitric acid, a spent etching waste solution of composition 250 g/L HNO3, 30-40 g/L Cu, 30-40 g/L Sn, 30-40 g/L Pb and 20-25 g/L Fe is produced. High metal concentrations in the spent etching waste solution make it a viable candidate for the recovery of metals. Rec...
متن کاملذخیره در منابع من
با ذخیره ی این منبع در منابع من، دسترسی به آن را برای استفاده های بعدی آسان تر کنید
عنوان ژورنال:
- Physical chemistry chemical physics : PCCP
دوره 18 36 شماره
صفحات -
تاریخ انتشار 2016