Unveiling the Dynamical Assembly of Magnetic Nanocrystal Zig‐Zag Chains via In Situ TEM Imaging in Liquid
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Wiley
Abstract
The controlled assembly of colloidal magnetic nanocrystals is key to many applications such as nanoelectronics, storage memory devices, and nanomedicine. Here, the motion and ordering of ferrimagnetic nanocubes in water via liquid‐cell transmission electron microscopy is directly imaged in situ. Through the experimental analysis, combined with molecular dynamics simulations and theoretical considerations, it is shown that the presence of highly competitive interactions leads to the formation of stable monomers and dimers, acting as nuclei, followed by a dynamic growth of zig‐zag chain‐like assemblies. It is demonstrated that such arrays can be explained by first, a maximization of short‐range electrostatic interactions, which at a later stage become surpassed by magnetic forces acting through the easy magnetic axes of the nanocubes, causing their tilted orientation within the arrays. Moreover, in the confined volume of liquid in the experiments, interactions of the nanocube surfaces with the cell membranes, when irradiated at relatively low electron dose, slow down the kinetics of their self‐assembly, facilitating the identification of different stages in the process. The study provides crucial insights for the formation of unconventional linear arrays made of ferrimagnetic nanocubes that are essential for their further exploitation in, for example, magnetic hyperthermia, magneto‐transport devices, and nanotheranostic tools
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Arciniegas, M. P., Castelli, A., Brescia, R., Serantes, D., Ruta, S., Hovorka, O., Satoh, A., Chantrell, R., Pellegrino, T., Unveiling the Dynamical Assembly of Magnetic Nanocrystal Zig‐Zag Chains via In Situ TEM Imaging in Liquid. Small 2020, 16, 1907419. https://doi.org/10.1002/smll.201907419
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https://doi.org/10.1002/smll.201907419Sponsors
T.P. acknowledges financial support from European Union through the Horizon 2020 Starting European Research Council (ERC) grant ICARO (Contract Number 678109). M.P.A. and T.P. acknowledge financial support by the European Union's Horizon 2020 through the Research and Innovation Staff Exchange (RISE) programme under the Marie Skłodowska‐Curie actions (MSCA) (Grant agreement 691185–COMPASS). D.S. acknowledges Xunta de Galicia for financial support under the I2C Plan and the Strategic Grouping in Materials (AeMAT; Grant No. ED431E2018/08). Financial support of the Royal Society through International Exchanges scheme IE160535 is gratefully acknowledged. This work made use of computational facilities funded by the Small items of research equipment at the University of York ENERGY (Grant No. EP/K031589/1)
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© 2020 The Authors. Published by WILEY‐VCH Verlag GmbH & Co. KGaA, Weinheim This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited
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