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Dive into the research topics where L. C. Estepa is active.

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Featured researches published by L. C. Estepa.


Carbon | 1998

Structures of soot generated by laser induced pyrolysis of metal-graphite composite targets

Edgar Muñoz; Ana M. Benito; L. C. Estepa; Juan José Gómez Fernández; Y. Maniette; M.T. Martínez; G.F. de la Fuente

The first results of a novel laser induced pyrolysis (LIP) method for high yield production of fullerene and single walled nanotubes are reported. The pyrolysis process of graphite targets is carried out by means of a continuous CO 2 laser under a flowing argon atmosphere. The vaporization of the targets and the deposition of the generated soot take place in a vertical experimental set-up.


international quantum electronics conference | 2013

The laser furnace: A revolution in ceramics and glass processing?

I. de Francisco; V. Lennikov; Ruth Lahoz; L.A. Angurel; L. C. Estepa; G.F. de la Fuente

Summary form only given. Photothermal laser processing of ceramics and glass usually results in the appearance of microcracks and in the consequent severe devaluation of their mechanical properties. The former is due to extreme thermo-mechanical stress.This work presents a novel processing tool, which combines laser irradiation with a continuous roller furnace, with the aim of processing ceramics and glass products without thermo-mechanical damage. The Laser Furnace apparatus will be described, along with some of the most representative results obtained to date on ceramic tile and flat window glass processing. Microstructure and properties of the resulting laser treated products will be reviewed in order to evaluate this novel methodology. A recently patented [1] Laser Zone Melting (LZM) method has thus been employed to prepare several types of oxide coatings on different pure oxide or mixed complex oxide commercial substrates. This novel meltsolidification processing method allows synthesizing high melting solids with a simultaneous input from an external, auxiliary heat source. This is done by performing the synthesis procedure within the hot zone of a continuous roller kiln, where the laser beam is scanned over the surface of the pre-coated substrate in motion. Figure 1 illustrates the Laser Furnace apparatus used for such a purpose. It is composed of a continuous roller kiln (A), a CO2 Laser system (B) and a beam scanning unit (C). The LZM method has been applied successfully to prepare refractory Zirconia-type eutectics [2], high temperature superconductor oxide coatings on MgO substrates [3] and alkaline-earth titanate coatings on alumina substrates [4]. A particular example of the procedure will be also presented. Powdered rare-earth oxides, as well as mixtures of the latter with Al2O3 were used as starting materials. In-situ synthesis of the corresponding coatings was performed by irradiating the precursor, deposited onto an Al2O3 substrate, with a CO2 laser emitting at 10.6 μm. Microstructure (SEM) and phase composition (XRD) demonstrated in-situ formation of oxide eutectic systems within the coating. The interaction with the substrate resulted in stable, 200-500 μm thick, composite coatings, whose microstructure will be discussed in terms of Laser processing parameters and the nature of the oxide materials and substrate. Examples of commercial ceramic tiles and soda-lime glass products obtained by Laser Furnace processing will be also shown and discussed.


Ceramics International | 2018

Microstructural characterization and tribological behavior of Laser Furnace processed ceramic tiles

F. Rey-García; F. Gutierrez-Mora; C.J. Borrel; L. C. Estepa; Luis A. Angurel; G.F. de la Fuente


Cfi-ceramic Forum International | 2005

Ceramic tile decoration by laser technology

A. Pascual; E. Fortanet; J. Carda; R. Pavlov; José M. Pedra; G. F. De La Fuente; L. C. Estepa; Ruth Lahoz


Archive | 2001

Total or partial modification of ceramic surfaces with the use of laser radiation without affecting the functional characteristics

L. C. Estepa; Germán F. de la Fuente; Daniel Beltrán-Porter; Rafael Ibáñez Puchades


Archive | 2014

Nanoparticle exposure during laser irradiation of ceramic tiles in an industrial setting

Mar Viana; Ana Sofia Fonseca; Xavier Querol; I. de Francisco; L. C. Estepa; Germán F. de la Fuente


Archive | 2014

Indoor emissions monitoring during tile sintering in a high-temperature continuous laser furnace

Ana Sofia Fonseca; Mar Viana; Xavier Querol; I. de Francisco; L. C. Estepa; Germán F. de la Fuente


Archive | 2012

Descripción del horno Laserfiring. Instalación y puesta en marcha

E. Guerrero; J. Velasco Vélez; I. de Francisco; V. Lennikov; L. C. Estepa; Germán F. de la Fuente


Archive | 2012

Horno láser continuo para síntesis de cerámicas avanzadas

V. Lennikov; I. de Francisco; L. C. Estepa; Germán F. de la Fuente


Archive | 2012

Fabricación de ladrillos cara vista blancos con el método laserfiring

J. Velasco Vélez; E. Guerrero; I. de Francisco; V. Lennikov; L. C. Estepa; Germán F. de la Fuente

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Germán F. de la Fuente

Spanish National Research Council

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I. de Francisco

Spanish National Research Council

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V. Lennikov

Spanish National Research Council

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G.F. de la Fuente

Spanish National Research Council

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Luis A. Angurel

Spanish National Research Council

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Mar Viana

Spanish National Research Council

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Ruth Lahoz

Spanish National Research Council

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Ana M. Benito

Spanish National Research Council

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