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Dive into the research topics where Francisco J. Sanza is active.

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Featured researches published by Francisco J. Sanza.


Biosensors and Bioelectronics | 2010

Label-free biosensing by means of periodic lattices of high aspect ratio SU-8 nano-pillars

Miguel Holgado; Carlos Angulo Barrios; F.J. Ortega; Francisco J. Sanza; Rafael Casquel; M.F. Laguna; María-José Bañuls; D. López-Romero; Rosa Puchades; Ángel Maquieira

We developed biophotonic sensing arrays of 60x60 microm(2) made of periodic lattices of high aspect ratio SU-8 nano-pillars in order to demonstrate their capability for label-free molecule detection, as well as the sensitivity enhancement in comparison with a single layer of SU-8. The biophotonic sensing arrays, that we call BICELLs (Biophotonic sensing cells), are interrogated vertically by using micron spot size Fourier transform visible and IR spectrometry (FT-VIS-IR). We monitored the surface immobilization of bovine serum albumin (BSA) antigen and anti-BSA antibody (aBSA) recognition. The bioassay exhibits a limit of detection (LOD) in the order of 2 ng/ml limited by the wavenumber uncertainty during the interrogation process. We also estimated and compared the theoretical biolayer thickness with previous results.


Advanced Materials | 2011

Transparent nanometric organic luminescent films as UV-active components in photonic structures.

Francisco J. Aparicio; Miguel Holgado; Ana Borras; Iwona Blaszczyk-Lezak; Amadeu Griol; Carlos Angulo Barrios; Rafael Casquel; Francisco J. Sanza; Hans Sohlström; Mikael Antelius; Agustín R. González-Elipe; Angel Barranco

A new kind of visible-blind organic thin-film material, consisting of a polymeric matrix with a high concentration of embedded 3-hydroxyflavone (3HF) dye molecules, that absorbs UV light and emits ...


Biosensors and Bioelectronics | 2011

Bio-Photonic Sensing Cells over transparent substrates for anti-gestrinone antibodies biosensing.

Francisco J. Sanza; Miguel Holgado; F.J. Ortega; Rafael Casquel; D. López-Romero; María-José Bañuls; M.F. Laguna; Carlos Angulo Barrios; Rosa Puchades; Ángel Maquieira

In a previous work we introduced the term Bio-Photonic Sensing Cells (BICELLs), referred to periodic networks of nano-pillar suitable for biosensing when are vertically interrogated. In this article, we demonstrate the biosensing capabilities of a type of micrometric size BICELLs made of SU-8 nano-pillars fabricated over transparent substrates. We verify the biochips functionality comparing the theoretical simulations with the experimental results when are optically interrogated in transmission. We also demonstrate a sensitivity enhancement by reducing the pitch among nano-pillars from 800 to 700 nm. Thus, the Limit of Detection achievable in these types of BICELLs is in the order of 64 pg/mL for 700 nm in pitch among nano-pillars in comparison with 292 pg/mL for 800 nm in pitch when are interrogated by Fourier Transform Visible and Infrared Spectrometry. The experiments exhibited a good reproducibility with a relative standard deviation of 0.29% measured within 8 days for a specific concentration. Finally, BICELLs functionality was tested in real conditions with unpurified rabbit serum for detecting anti-gestrinone antibodies, demonstrating the high performance of this type of BICELLs to detect specific antibodies having immobilized the suitable bioreceptors onto the sensing surface.


Optical Materials Express | 2014

Silicon nanopillar arrays with SiO2 overlayer for biosensing application

Bikash Dev Choudhury; Rafael Casquel; María-José Bañuls; Francisco J. Sanza; M.F. Laguna; Miguel Holgado; Rosa Puchades; Ángel Maquieira; Carlos Angulo Barrios; Srinivasan Anand

We present the fabrication of silicon dioxide (SiO2) coated silicon nanopillar array structures and demonstrate their application as sensitive optical biosensors. Colloidal lithography, plasma dry etching and deposition processes are used to fabricate SiO2 coated Si nanopillar arrays with two different diameters and periods. Proof of concept bio recognition experiments are carried out with the bovine serum albumin (BSA)/antiBSA model system using Fourier transform visible and IR spectrometry (FT-VIS-IR) in reflection mode. A limit of detection (LoD) value of 5.2 ng/ml is estimated taking in to account the wavenumber uncertainty in the measurements.


Optical Materials Express | 2016

Bulk sensing performance comparison between silicon dioxide and resonant high aspect ratio nanopillars arrays fabricated by means of interference lithography

Iñaki Cornago; Ana L. Hernandez; R. Casquel; Miguel Holgado; M.F. Laguna; Francisco J. Sanza; J. Bravo

In this work we present the refractive index sensing performance comparison between resonant (R-NPs) and silicon dioxide (SiO2-NPs) high-aspect ratio nano-pillars arrays. Both arrays have been fabricated by laser interference lithography and reactive ion etching. The R-NPs are made by a multilayer of silicon oxide and silicon nitride distributed to act as a vertical resonant cavity with two Bragg reflectors. Several chips containing eight periodic arrays of R-NPs and SiO2-NPs were implemented following the presented fabrication process, having a height in the order of 2.5 μm, a diameter in the order of 200 nm, different pitches and aspect ratio up to 9.8. Finally, the optical responses of these arrays were measured by infiltration of fluids with different refractive indexes. The main conclusion is that sensitivity obtained for the R-NPs is more than two times higher in comparison with the SiO2-NPs sensitivity (3724 cm−1/RIU and 1652 cm−1/RIU, respectively).


Sensors | 2015

Antigen-Antibody Affinity for Dry Eye Biomarkers by Label Free Biosensing. Comparison with the ELISA Technique

Maríafe Laguna; Miguel Holgado; Ana L. Hernandez; Beatriz Santamaría; Álvaro Lavín; Javier Soria; Tatiana Suárez; Carlota Bardina; Mónica Jara; Francisco J. Sanza; Rafael Casquel

The specificity and affinity of antibody-antigen interactions is a fundamental way to achieve reliable biosensing responses. Different proteins involved with dry eye dysfunction: ANXA1, ANXA11, CST4, PRDX5, PLAA and S100A6; were validated as biomarkers. In this work several antibodies were tested for ANXA1, ANXA11 and PRDX5 to select the best candidates for each biomarker. The results were obtained by using Biophotonic Sensing Cells (BICELLs) as an efficient methodology for label-free biosensing and compared with the Enzyme-Linked Immuno Sorbent Assay (ELISA) technique.


Optics Letters | 2015

Arrays of resonant nanopillars for biochemical sensing

Ana L. Hernandez; R. Casquel; M. Holgado; Iñaki Cornago; Francisco J. Sanza; Beatriz Santamaría; María V. Maigler; Fátima Fernández; Álvaro Lavín; M.F. Laguna

In this Letter, we demonstrate for the first time the experimental capability for the biochemical sensing of resonant nanopillars (RNPs) arrays. These arrays are fabricated over a glass substrate and are optically integrated from the backside of this substrate. The reflectivity profiles of the RNPs arrays are measured by infiltrating different ethanol fractions in water in order to evaluate the optical response for the different refractive indexes, which range from 1.330 to 1.342. A linear fit of the resonant modes shift is observed as a function of the bulk refractive index of the liquid infiltrated. For the type of transducer analyzed, a relative sensitivity of 10017u2009u2009cm(-1)/Refractive Index Unit (RIU) is achieved, allowing us to reach a competitive Limit of Detection (LoD) in the order of 1×10(-5)u2009u2009RIU.


Sensors | 2014

Optimization of Dengue Immunoassay by Label-Free Interferometric Optical Detection Method

M.F. Laguna; Miguel Holgado; Francisco J. Sanza; Álvaro Lavín; Ana López; Rafael Casquel

In this communication we report a direct immunoassay for detecting dengue virus by means of a label-free interferometric optical detection method. We also demonstrate how we can optimize this sensing response by adding a blocking step able to significantly enhance the optical sensing response. The blocking reagent used for this optimization is a dry milk diluted in phosphate buffered saline. The recognition curve of dengue virus over the proposed surface sensor demonstrates the capacity of this method to be applied in Point of Care technology.


Sensors | 2014

Description of an Advantageous Optical Label-Free Biosensing Interferometric Read-Out Method to Measure Biological Species

Miguel Holgado; Francisco J. Sanza; Ana López; Álvaro Lavín; Rafael Casquel; M.F. Laguna

In this article we report a new, simple, and reliable optical read-out detection method able to assess Rotavirus present in human sera as well as in the viral pollution sources. It is based on the interference of two interferometers used as biophotonic transducers. The method significantly improves the optical label-free biosensing response measuring both, the concentration of the AgR and its corresponding size. Two different immunoassays were carried out: Bovine Serum Albumin (BSA), and the recognition by its antibody (anti-BSA); and Rotavirus (AgR) and the recognition by its antibody (anti-AgR). In the cases studied, and using as model interferometer a simple Fabry-Perot transducer, we demonstrate a biosensing enhancement of two orders of magnitude in the Limit of Detection (LoD). In fact, this read-out optical method may have significant implications to enhance other optical label-free photonic transducers reported in the scientific literature.


Biosensors | 2012

Biomolecular Interaction Analysis of Gestrinone-anti-Gestrinone Using Arrays of High Aspect Ratio SU-8 Nanopillars

F.J. Ortega; María-José Bañuls; Francisco J. Sanza; Rafael Casquel; M.F. Laguna; Miguel Holgado; D. López-Romero; Carlos Angulo Barrios; Ángel Maquieira; Rosa Puchades

In this paper, label-free biosensing for antibody screening by periodic lattices of high-aspect ratio SU-8 nano-pillars (BICELLs) is presented. As a demonstration, the determination of anti-gestrinone antibodies from whole rabbit serum is carried out, and for the first time, the dissociation constant (KD = 6 nM) of antigen-antibody recognition process is calculated using this sensing system. After gestrinone antigen immobilization on the BICELLs, the immunorecognition was performed. The cells were interrogated vertically by using micron spot size Fourier transform visible and IR spectrometry (FT-VIS-IR), and the dip wavenumber shift was monitored. The biosensing assay exhibited good reproducibility and sensitivity (LOD = 0.75 ng/mL).

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Miguel Holgado

Technical University of Madrid

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M.F. Laguna

Technical University of Madrid

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Rafael Casquel

Technical University of Madrid

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Álvaro Lavín

Technical University of Madrid

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Beatriz Santamaría

Complutense University of Madrid

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Ana L. Hernandez

Technical University of Madrid

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María V. Maigler

Technical University of Madrid

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Carlos Angulo Barrios

Technical University of Madrid

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D. López-Romero

Technical University of Madrid

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María-José Bañuls

Polytechnic University of Valencia

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