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M

M. Perálvarez

Researcher at Adria Airways

Publications -  27
Citations -  815

M. Perálvarez is an academic researcher from Adria Airways. The author has contributed to research in topics: Silicon & Luminescence. The author has an hindex of 13, co-authored 27 publications receiving 721 citations. Previous affiliations of M. Perálvarez include University of Barcelona.

Papers
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Polymer-Enhanced Stability of Inorganic Perovskite Nanocrystals and Their Application in Color Conversion LEDs.

TL;DR: A new method to efficiently coat CsPbX3 NCs, which resulted in their increased chemical and optical stability as well as processability and can be embedded in self-standing silicone/glass plates as down-conversion filters for the fabrication of monochromatic green and white light emitting diodes (LEDs) with narrow bandwidths and appealing color characteristics.
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Field effect luminescence from Si nanocrystals obtained by plasma-enhanced chemical vapor deposition

TL;DR: In this article, the field effect induced luminescence has been achieved by alternate tunnel injection of electrons and holes into Si nanocrystals, and the emitted device is a metaloxide-semiconductor structure with a semitransparent polycrystalline Si contact ∼250nm thick and a silicon-rich silicon oxide layer of about 40nm deposited on a p-type Si substrate by plasma-enhanced chemical vapor deposition.
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Synthesis of SnO2 and ZnO Colloidal Nanocrystals from the Decomposition of Tin(II) 2-Ethylhexanoate and Zinc(II) 2-Ethylhexanoate

TL;DR: In this paper, the first nonhydrolytic synthesis of soluble SnO2 nanocrystals, by the decomposition at temperatures between 230 and 250 °C of tin(II) 2-ethylhexanoate in diphenyl ether and in the presence of amines as surface capping agents, was reported.
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White Light Emission from Planar Remote Phosphor Based on NHC Cycloplatinated Complexes.

TL;DR: The compounds 5, 8, and 9 have been revealed as the most efficient emitters in the solid state with quantum yields of 41%, 21%, and 40%, respectively.
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Smart Lighting System ISO/IEC/IEEE 21451 Compatible

TL;DR: An interoperable smart lighting solution that combines heterogeneous lighting technologies enabling intelligent functions that can shift light intensity to increase visual comfort, and it is oriented toward human centric lighting studies.