4.6 Article

Exploring Nanomechanical Properties of Soot Particle Layers by Atomic Force Microscopy Nanoindentation

Journal

APPLIED SCIENCES-BASEL
Volume 11, Issue 18, Pages -

Publisher

MDPI
DOI: 10.3390/app11188448

Keywords

atomic force microscopy; nanoindentation; flame-formed carbon nanoparticles; nanostructured films; hardness; Young's modulus

Funding

  1. Ministero dell'Istruzione, dell'Universita e della Ricerca [2017PJ5XXX]

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This study conducted an experimental investigation on the nanomechanical properties of flame-formed carbonaceous particle layers using Atomic Force Microscopy (AFM) for the first time. The experimental procedure involved a combination of semi-contact and contact AFM imaging, as well as AFM force spectroscopy. Results discussed the hardness and Young's modulus values obtained from AFM measurements for different soot particle films.
In this work, an experimental investigation of the nanomechanical properties of flame-formed carbonaceous particle layers has been performed for the first time by means of Atomic Force Microscopy (AFM). To this aim, carbon nanoparticles with different properties and nanostructures were produced in ethylene/air laminar premixed flames at different residence times. Particles were collected on mica substrates by means of a thermophoretic sampling system and then analyzed by AFM. An experimental procedure based on the combination between semi-contact AFM topography imaging, contact AFM topography imaging and AFM force spectroscopy has been implemented. More specifically, a preliminary topological characterization of the samples was first performed operating AFM in semi-contact mode and then tip-sample interaction forces were measured in contact spectroscopy mode. Finally, semi-contact mode was used to image the indented surface of the samples and to retrieve the projected area of indents. The hardness of investigated samples was obtained from the force-distance curves measured in spectroscopy mode and the images of intends acquired in semi-contact mode. Moreover, the Young's modulus was measured by fitting the linear part of the retraction force curves using a model based on the Hertz theory. The extreme force sensitivity of this technique (down to nNewton) in addition to the small size of the probe makes it extremely suitable for performing investigation of mechanical properties of materials at the nanoscale. The experimental procedure was successfully tested on reference materials characterized by different plastic behavior, e.g., polyethylene naphthalate and highly oriented pyrolytic graphite. Both hardness and Young's modulus values obtained from AFM measurements for different soot particle films were discussed.

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