Field emission characterization of field-aligned carbon nanotubes synthesized in an environmental transmission electron microscope

Author:

Vincent Pascal1ORCID,Panciera Federico2,Florea Ileana3ORCID,Ayari Anthony1ORCID,Perisanu Sorin1,Cojocaru Costel Sorin3ORCID,Taoum Haifa3ORCID,Wei Chen2ORCID,Saidov Khakimjon4ORCID,Mirsaidov Utkur4ORCID,Aguili Ilias1ORCID,Blanchard Nicholas1ORCID,Legagneux Pierre5ORCID,Purcell Stephen Thomas1ORCID

Affiliation:

1. Univ Lyon, Univ Claude Bernard Lyon 1, CNRS, Institut Lumière Matière 1 , F-69622 Villeurbanne, France

2. Université Paris-Saclay, CNRS, Centre for Nanoscience and Nanotechnology 2 , 91120, Palaiseau, France

3. Laboratory of Physics of Interfaces and Thin Films, UMR CNRS 7647, Ecole Polytechnique 3 , IP-Paris, 91228 Palaiseau, France

4. Centre for BioImaging Sciences, Departments of Physics and Biological Sciences, National University of Singapore 4 , 14 Science Drive 4, Singapore 117557

5. Thales Research and Technology 5 , 91767 Palaiseau, France

Abstract

Optimizing the synthesis of carbon nanotubes (CNTs) for applications like field emission (FE) sources requires a fundamental understanding of the growth kinetics of individual CNTs. In this article, we explore how applying electric fields during CNT synthesis influences the as-grown nanotubes and their FE performance. We observe growth and undertake FE measurements in real time using an environmental transmission electron microscope. This is achieved through a polarizable capacitor gap within a microchip sample heater specifically designed for this purpose. Individual nanotubes are easily resolved and are predominantly single-wall CNTs. At low-applied fields, the growing nanotubes can span the gap and link with the opposite electrode, albeit with some loss due to mechanical failure. With a high-applied field and positive bias for FE, we continue to observe the oriented growth of nanotubes. However, this growth is constrained within the gap due to the possibility of FE occurring during the growth process, which can result in either saturation or damage. At any given time, we have the flexibility to halt the growth process and conduct in situ FE experiments. This approach enables us to comprehensively track the complete development of the CNTs and gain insights into the various mechanisms responsible for limiting the performance of CNT cathodes. Interestingly, we report an original self-oscillation induced destruction mechanism that has not been reported before.

Funder

Agence Nationale de la Recherche

Publisher

American Vacuum Society

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