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Nonlinear Phase Imaging of Gold Nanoparticles Embedded in Organic Thin Films
Author(s) -
M.A. Hurier,
Maxime Wierez-Kien,
Cecilia Mzayek,
Bertrand Donnio,
JeanLouis Gallani,
M. V. Rastei
Publication year - 2019
Publication title -
langmuir
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.042
H-Index - 333
eISSN - 1520-5827
pISSN - 0743-7463
DOI - 10.1021/acs.langmuir.9b02369
Subject(s) - colloidal gold , nanoparticle , thin film , materials science , phase (matter) , nonlinear system , nanotechnology , chemical engineering , phase imaging , chemistry , optics , organic chemistry , physics , microscopy , quantum mechanics , engineering
The phase detection in the dynamic mode of the atomic force microscopes is a known technique for mapping nanoscale surface heterogeneities. We present here an additional functionality of this technique, which allows high-resolution imaging of embedded inorganic nanoparticles with diameter and interparticle distances of a few nanometers. The method is based on a highly nonlinear tip-sample interaction occurring markedly above the nanoparticles, giving thus a high phase contrast between zones with and without nanoparticles. A relationship between the tip-sample interaction strength and the phase signal is established in experiments and from calculations conducted with the model developed by Haviland et al. [ Soft Matter 2016 , 12 , 619 ], which is based on solving a combined equation of motion for both the cantilever and surface while taking into account the time-varying interaction forces. The nonlinear phase behavior at the origin of the subnanometer spatial resolution is found by numerical analyses to be the result of a local mechanical stiffening of the zone containing nanoparticles, which is enhanced by 2 orders of magnitude or more.

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