MoxWx–1S2 Nanotubes for Advanced Field Emission Application

Author:

Pirker Luka12ORCID,Ławrowski Robert3ORCID,Schreiner Rupert3,Remškar Maja1ORCID,Višić Bojana14ORCID

Affiliation:

1. Department of Condensed Matter Physics Jozef Stefan Institute Jamova cesta 39 Ljubljana 1000 Slovenia

2. Department of Electrochemical Materials J. Heyrovsky Institute of Physical Chemistry Dolejskova 3 182 23 Prague 8 Czech Republic

3. Faculty of Applied Natural Sciences and Cultural Studies OTH Regensburg Seybothstraße 2 93053 Regensburg Germany

4. Institute of Physics Belgrade University of Belgrade Pregrevica 118 Belgrade 11080 Serbia

Abstract

AbstractTransition metal dichalcogenide (TMDC) nanotubes complement the field of low‐dimensional materials with their quasi‐1D morphology and a wide set of intriguing properties. By introducing different transition metals into the crystal structure, their properties can be tailored for specific purpose and applications. Herein, the characterization and a subsequent preparation of single‐nanotube field emission devices of MoxWx‐1S2 nanotubes prepared via the chemical vapor transport reaction is presented. Energy‐dispersive X‐ray spectroscopy, Raman spectroscopy, and X‐ray diffraction  indicate that the molybdenum and tungsten atoms are randomly distributed within the crystal structure and that the material is highly crystalline. High resolution transmission electron microscopy  and electron diffraction (ED) patterns further corroborate these findings. A detailed analysis of the ED patterns from an eight‐layer nanotube reveal that the nanotubes grow in the 2H structure, with each shell consists of one bilayer. The work function of the nanotubes is comparable to that of pure MoS2 and lower of pure WS2 NTs, making them ideal candidates for field emission applications. Two devices with different geometrical setup are prepared and tested as field emitters, showing promising results for single nanotube field emission applications.

Funder

Javna Agencija za Raziskovalno Dejavnost RS

Ministry of Education

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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