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Camila M. Maroneze

Researcher at Mackenzie Presbyterian University

Publications -  30
Citations -  628

Camila M. Maroneze is an academic researcher from Mackenzie Presbyterian University. The author has contributed to research in topics: Cyclic voltammetry & Colloidal gold. The author has an hindex of 15, co-authored 30 publications receiving 496 citations. Previous affiliations of Camila M. Maroneze include State University of Campinas & National Institute of Standards and Technology.

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Meldola blue immobilized on a new SiO2/TiO2/graphite composite for electrocatalytic oxidation of NADH

TL;DR: In this paper, a new SiO 2 /TiO 2/graphite composite was applied in the electrocatalytic oxidation of NADH, decreasing the oxidation potential to −120 mV.
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Graphene Oxide Mediated Broad-Spectrum Antibacterial Based on Bimodal Action of Photodynamic and Photothermal Effects.

TL;DR: The antibacterial results of PTT and PDT using GO in gram-positive and gram-negative bacteria, using low dose light, allow us to conclude that GO and nGO can be used in dermatologic infections, since the effect on human dermal fibroblasts of this treatment is low compared to the antibacterial effect.
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Spontaneous chemical functionalization via coordination of Au single atoms on monolayer MoS2

TL;DR: A spontaneous defect-free functionalization method consisting of attaching Au single atoms to monolayers of semiconducting MoS2(1H) via S-Au-Cl coordination complexes is demonstrated, which offers an effective and controllable approach for tuning the Fermi level and excitation spectra ofMoS2 via p-type doping and enhancing the thermal boundary conductance of monolayer MoS 2, thus promoting heat dissipation.
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Development of a sensor for L-Dopa based on Co(DMG)(2)ClPy/multi-walled carbon nanotubes composite immobilized on basal plane pyrolytic graphite electrode.

TL;DR: A sensitive and selective method is presented for the voltammetric determination of L-Dopa in pharmaceutical formulations using a basal plane pyrolytic graphite (BPPG) electrode modified with chloro(pyridine)bis(dimethylglyoximato)cobalt(III) (Co(DMG)(2)ClPy) absorbed in a multi-walled carbon nanotube (MWCNT).
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Ion-exchange properties of imidazolium-grafted SBA-15 toward AuCl4(-) anions and their conversion into supported gold nanoparticles.

TL;DR: The plasmon resonance bands, the X-ray diffraction patterns, and transmission electron microscopy images of the supported gold nanoparticles before and after thermal treatment at 973 K indicate that the metal nanostructures are highly dispersed and stabilized by the host environment.