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Size-modulation of functionalized FeO: nanoscopic customization to devise resolute piezoelectric nanocomposites.

作者信息

Bhattacharjee Souvik, Mazumder Nilesh, Mondal Suvankar, Panigrahi Karamjyoti, Banerjee Anibrata, Das Dimitra, Sarkar Saikat, Roy Dipayan, Chattopadhyay Kalyan Kumar

机构信息

Department of Physics, Jadavpur University, Kolkata - 700 032, India.

出版信息

Dalton Trans. 2020 Jun 21;49(23):7872-7890. doi: 10.1039/d0dt01167c. Epub 2020 May 29.

DOI:10.1039/d0dt01167c
PMID:32469013
Abstract

Magnetite (FeO), a representative relaxor multiferroic material, possesses fundamentally appealing multifaceted size-dependent properties. Herein, to evaluate a prototype spinel transition metal oxide (STMO), monodispersed and highly water-dispersible spherical magnetite nanoparticles (MNPs) with an enormous size range (3.7-242.8 nm) were synthesized via a facile microwave-assisted and polyol-mediated solvothermal approach at a controlled temperature and pressure using unique crystallite growth inhibitors. The excellent long-term colloidal stability of the MNPs in a polar environment and increase in their zeta potential confirmed the coordinative effect of the carboxylate groups derived from the covalent surface functionalization, which was also validated by FTIR spectroscopy, TGA and XPS analysis. The optical bandgap (E) between the crystal field split-off bands, which was calculated using the absorption spectra, increased gradually with a decrease in size of the MNPs within a broad UV-Vis range (1.59-4.92 eV). The red-shifting of the asymmetric Raman peaks with a smaller size and short-range electron-phonon coupling could be explained by the modified phonon confinement model (MPCM), whereas ferrimagnetic nature rejigged by superparamagnetism was verified from Mössbauer analysis. These stoichiometric, non-toxic, polar and magnetic nanocrystals are not only ideal for biomedical applications, but also suitable as electroactive porous host networks. Finally, the size-modulated MNPs were incorporated in poly(vinylidene fluoride) [PVDF]-based polytype nanogenerators as an electret filler to demonstrate their piezoelectric performance (V∼115.95 V and I∼1.04 μA), exhibiting substantial electromagnetic interference shielding.

摘要

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