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Dive into the research topics where Raquel Lucena is active.

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Featured researches published by Raquel Lucena.


Physical Chemistry Chemical Physics | 2011

V-doped SnS2: a new intermediate band material for a better use of the solar spectrum

P. Wahnón; J.C. Conesa; P. Palacios; Raquel Lucena; Irene Aguilera; Yohanna Seminovski; Fernando Fresno

Intermediate band materials can boost photovoltaic efficiency through an increase in photocurrent without photovoltage degradation thanks to the use of two sub-bandgap photons to achieve a full electronic transition from the valence band to the conduction band of a semiconductor structure. After having reported in previous works several transition metal-substituted semiconductors as able to achieve the electronic structure needed for this scheme, we propose at present carrying out this substitution in sulfides that have bandgaps of around 2.0 eV and containing octahedrally coordinated cations such as In or Sn. Specifically, the electronic structure of layered SnS2 with Sn partially substituted by vanadium is examined here with first principles quantum methods and seen to give favourable characteristics in this respect. The synthesis of this material in nanocrystalline powder form is then undertaken and achieved using solvothermal chemical methods. The insertion of vanadium in SnS2 is found to produce an absorption spectrum in the UV-Vis-NIR range that displays a new sub-bandgap feature in agreement with the quantum calculations. A photocatalytic reaction-based test verifies that this sub-bandgap absorption produces highly mobile electrons and holes in the material that may be used for the solar energy conversion, giving experimental support to the quantum calculations predictions.


Journal of Materials Chemistry | 2014

V-substituted In2S3: an intermediate band material with photocatalytic activity in the whole visible light range

Raquel Lucena; J.C. Conesa; Irene Aguilera; Pablo Palacios; Perla Wahnón

We proposed in our previous work V-substituted In2S3 as an intermediate band (IB) material able to enhance the efficiency of photovoltaic cells by combining two photons to achieve a higher energy electron excitation, much like natural photosynthesis. Here this hyper-doped material is tested in a photocatalytic reaction using wavelength-controlled light. The results evidence its ability to use photons with wavelengths of up to 750 nm, i.e. with energy significantly lower than the bandgap (=2.0 eV) of non-substituted In2S3, driving with them the photocatalytic reaction at rates comparable to those of non-substituted In2S3 in its photoactivity range (λ ≤ 650 nm). Photoluminescence spectra evidence that the same bandgap excitation as in V-free In2S3 occurs in V-substituted In2S3 upon illumination with photons in the same sub-bandgap energy range which is effective in photocatalysis, and its linear dependence on light intensity proves that this is not due to a nonlinear optical property. This evidences for the first time that a two-photon process can be active in photocatalysis in a single-phase material. Quantum calculations using GW-type many-body perturbation theory suggest that the new band introduced in the In2S3 gap by V insertion is located closer to the conduction band than to the valence band, so that hot carriers produced by the two-photon process would be of electron type; they also show that the absorption coefficients of both transitions involving the IB are of significant and similar magnitude. The results imply that V-substituted In2S3, besides being photocatalytically active in the whole visible light range (a property which could be used for the production of solar fuels), could make possible photovoltaic cells of improved efficiency.


Journal of Applied Physics | 2010

Magnetometry and electron paramagnetic resonance studies of phosphine- and thiol-capped gold nanoparticles

Estefanía Guerrero; Miguel Ángel Muñoz-Márquez; A. Fernández; P. Crespo; A. Hernando; Raquel Lucena; J.C. Conesa

In the last years, the number of studies performed by wholly independent research groups that confirm the permanent magnetism, first observed in our research lab, for thiol-capped Au nanoparticles (NPs) has rapidly increased. Throughout the years, the initial magnetometry studies have been completed with element-specific magnetization measurements based on, for example, the x-ray magnetic circular dichroism technique that have allowed the identification of gold as the magnetic moment carrier. In the research work here presented, we have focused our efforts in the evaluation of the magnetic behavior and iron impurities content in the synthesized samples by means of superconducting quantum interference device magnetometry and electron paramagnetic resonance spectrometry, respectively. As a result, hysteresis cycles typical of a ferromagnetic material have been measured from nominally iron-free gold NPs protected with thiol, phosphine, and chlorine ligands. It is also observed that for samples containing bot...


Chemistry of Materials | 2008

Synthesis and Spectral Properties of Nanocrystalline V-Substituted In2S3, a Novel Material for More Efficient Use of Solar Radiation

Raquel Lucena; Irene Aguilera; P. Palacios; P. Wahnón; J.C. Conesa


Applied Catalysis A-general | 2012

Hydrothermally synthesized nanocrystalline tin disulphide as visible light-active photocatalyst: Spectral response and stability

Raquel Lucena; Fernando Fresno; J.C. Conesa


Catalysis Communications | 2012

Spectral response and stability of In2S3 as visible light-active photocatalyst

Raquel Lucena; Fernando Fresno; J.C. Conesa


Journal of Nanoparticle Research | 2010

Permanent magnetism in phosphine- and chlorine-capped gold: from clusters to nanoparticles

Miguel Ángel Muñoz-Márquez; Estefanía Guerrero; A. Fernández; P. Crespo; Antonio Hernando; Raquel Lucena; J.C. Conesa


Recent advances within the field of materials science in Spain, 2015, ISBN 978-84-9717-346-9, págs. 30-43 | 2015

New generation of materials for more efficient solar energy use: Quantum modelling and experimental realizations

Perla Wahnón Banarroch; Pablo Palacios Clemente; Irene Aguilera; Yohanna Seminovski; Raquel Lucena


Proceedings of 13th edition of Trends in Nanotechnology International Conference (TNT2012) | 13th edition of Trends in Nanotechnology International Conference (TNT2012) | 10/09/2012 - 14/09/2012 | Madrid | 2012

New Intermediate band sulphide nanoparticles acting in the full visible light range spectra as an active photocatalyst

Raquel Lucena; J.C. Conesa; Fernando Fresno; Perla Wahnón Benarroch; Pablo Palacios Clemente; Yohanna Seminóvski Pérez


Congreso Iberoamericano de Catálisis | XXIII Congreso Iberoamericano de Catálisis | 02/09/2012 - 12/09/2012 | Santa Fe, Argentina | 2012

Sulfuros fotocatalizadores que utilizan ampliamente el espectro de luz visible

J.C. Conesa; Raquel Lucena; Fernando Fresno; Perla Wahnón Benarroch; Pablo Palacios Clemente; Yohanna Seminóvski Pérez

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J.C. Conesa

Spanish National Research Council

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Fernando Fresno

Spanish National Research Council

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Pablo Palacios Clemente

Technical University of Madrid

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Perla Wahnón Benarroch

Technical University of Madrid

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Irene Aguilera

Forschungszentrum Jülich

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A. Fernández

Spanish National Research Council

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Estefanía Guerrero

Spanish National Research Council

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Irene Aguilera Bonet

Technical University of Madrid

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P. Crespo

Spanish National Research Council

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