Publications

Export 10 results:
Sort by: [ Author  (Asc)] Title Type Year
A B C D E F G H I J K L [M] N O P Q R S T U V W X Y Z   [Show ALL]
M
Marques, A. C., J. Faria, P. Perdigão, B. M. M. Faustino, R. Ritasalo, K. Costabello, R. C. da Silva, and I. Ferreira, "Stability under humidity, UV-light and bending of AZO films deposited by ALD on Kapton", Scientific Reports, vol. 9, pp. 17919, 2019.
Marques, A. C., D. Miglietta, G. Gaspar, A. C. Baptista, A. Gaspar, A. Perdigão, I. Soares, C. Bianchi, D. Sousa, B. M. Morais Faustino, V. S. Amaral, T. Santos, A. P. Gonçalves, R. C. da Silva, F. Giorgis, and I. Ferreira, " Synthesis of thermoelectric magnesium-silicide pastes for 3D printing, electrospinning and low-pressure spray", Materials for Renewable and Sustainable Energy, pp. 8-21, 2019.
Matos, B., M. Martins, A. C. Samamed, D. Sousa, I. Ferreira, and M. S. Diniz, "Toxicity Evaluation of Quantum Dots (ZnS and CdS) Singly and Combined in Zebrafish (Danio rerio)", International journal of environmental research and public health, vol. 17, pp. 232, 2020.
Mendes, M. J., A. Araújo, A. Vicente, H. Águas, I. Ferreira, E. Fortunato, and R. Martins, "Design of optimized wave-optical spheroidal nanostructures for photonic-enhanced solar cells", Nano Energy, vol. 26, pp. 286-296, 2016. AbstractDOI

The interaction of light with wavelength-sized photonic nanostructures is highly promising for light management applied to thin-film photovoltaics. Several light trapping effects come into play in the wave optics regime of such structures that crucially depend on the parameters of the photonic and absorbing elements. Thus, multi-parameter optimizations employing exact numerical models, as performed in this work, are essential to determine the maximum photocurrent enhancement that can be produced in solar cells.

Generalized spheroidal geometries and high-index dielectric materials are considered here to model the design of the optical elements providing broadband absorption enhancement in planar silicon solar cells. The physical mechanisms responsible for such enhancement are schematized in a spectral diagram, providing a deeper understanding of the advantageous characteristics of the optimized geometries. The best structures, composed of TiO2 half-spheroids patterned on the cells' top surface, yield two times higher photocurrent (up to 32.5 mA/cm2 in 1.5 µm thick silicon layer) than the same devices without photonic schemes.

These results set the state-of-the-art closer to the theoretical Lambertian limit. In addition, the considered light trapping designs are not affected by the traditional compromise between absorption enhancement versus current degradation by recombination, which is a key technological advantage.

Mendes, D., D. Sousa, A. C. Cerdeira, L. C. J. Pereira, A. Marques, J. Murta-Pina, A. Pronto, and I. Ferreira, "Low-cost and high-performance 3D printed YBCO superconductors", Ceramics International, vol. 47, pp. 381-387, 2021.
Mendes, M. J., S. Morawiec, T. Mateus, A. Lyubchyk, H. Águas, I. Ferreira, E. Fortunato, R. Martins, F. Priolo, and I. Crupi, "Broadband light trapping in thin film solar cells with self-organized plasmonic nano-colloids", Nanotechnology, vol. 26, issue 13, pp. 135202, 2015. AbstractDOI

The intense light scattered from metal nanoparticles sustaining surface plasmons makes them attractive for light trapping in photovoltaic applications. However, a strong resonant response from nanoparticle ensembles can only be obtained if the particles have monodisperse physical properties. Presently, the chemical synthesis of colloidal nanoparticles is the method that produces the highest monodispersion in geometry and material quality, with the added benefits of being low-temperature, low-cost, easily scalable and of allowing control of the surface coverage of the deposited particles. In this paper, novel plasmonic back-reflector structures were developed using spherical gold colloids with appropriate dimensions for pronounced far-field scattering. The plasmonic back reflectors are incorporated in the rear contact of thin film n-i-p nanocrystalline silicon solar cells to boost their photocurrent generation via optical path length enhancement inside the silicon layer. The quantum efficiency spectra of the devices revealed a remarkable broadband enhancement, resulting from both light scattering from the metal nanoparticles and improved light incoupling caused by the hemispherical corrugations at the cells' front surface formed from the deposition of material over the spherically shaped colloids.

Mendes, D. N. D. L., A. Gaspar, I. Ferreira, J. P. B. Mota, and R. P. P. L. Ribeiro, "3D-printed hybrid zeolitic/carbonaceous electrically conductive adsorbent structures", Chemical Engineering Research and Design, vol. 174, pp. 442-453, 2021.
Morawiec, S., M. J. Mendes, S. A. Filonovich, T. Mateus, S. Mirabella, H. Águas, I. Ferreira, F. Simone, E. Fortunato, R. Martins, F. Priolo, and I. Crupi, "Broadband photocurrent enhancement in a-Si:H solar cells with plasmonic back reflectors", Opt. Express, vol. 22, issue 104, pp. A1059-A1070, 2014. AbstractDOI

Plasmonic light trapping in thin film silicon solar cells is a promising route to achieve high efficiency with reduced volumes of semiconductor material. In this paper, we study the enhancement in the opto-electronic performance of thin a-Si:H solar cells due to the light scattering effects of plasmonic back reflectors (PBRs), composed of self-assembled silver nanoparticles (NPs), incorporated on the cells’ rear contact. The optical properties of the PBRs are investigated according to the morphology of the NPs, which can be tuned by the fabrication parameters. By analyzing sets of solar cells built on distinct PBRs we show that the photocurrent enhancement achieved in the a-Si:H light trapping window (600 – 800 nm) stays in linear relation with the PBRs diffuse reflection. The best-performing PBRs allow a pronounced broadband photocurrent enhancement in the cells which is attributed not only to the plasmon-assisted light scattering from the NPs but also to the front surface texture originated from the conformal growth of the cell material over the particles. As a result, remarkably high values of Jsc and Voc are achieved in comparison to those previously reported in the literature for the same type of devices.

Morawiec, S., M. J. Mendes, S. A. Filonovich, T. Mateus, S. Mirabella, H. Águas, I. Ferreira, F. Simone, E. Fortunato, R. Martins, F. Priolo, and I. Crupi, "Photocurrent enhancement in thin a-Si: H solar cells via plasmonic light trapping", CLEO: Science and Innovations: Optical Society of America, 8-13 Jun, 2014. Abstract

Photocurrent enhancement in thin a-Si:H solar cells due to the plasmonic light trapping is investigated, and correlated with the morphology and the optical properties of the self-assembled silver nanoparticles incorporated in the cells’ back reflector.

Muelle, H., P. Barquinha, I. Ferreira, E. Fortunato, M. C. Santos, and M. S. Diniz, "Effects of ultra-sonication on the cyanobacteria Microcystis aeruginosa structure and growth", Microsc. Microanal., vol. 21, pp. 50-51, 2015. AbstractDOI

The eutrophication of surface waters caused by cyanobacteria is a worldwide problem, leading to expensive
water treatment costs [1]. In addition, the production of microcystins by these microalgae may cause many
health problems to humans and animals (e.g. liver cancer) and even death [2]. Therefore, a variety of
methods have been developed to control cyanobacteria blooms, including physical and chemical treatments.
However, they have negative impacts on other species of (micro) algae and on other aquatic biota. As a
consequence, ultrasonic algae treatment has been proposed as a clean approach to controlling the blooms of
some algae species and microcystins degradation [3]. Still, the specific effects of ultra-sonication on
cyanobacteria are not well known. The present work aimed to study the effects of ultra-sonication on the
cyanobacteria structure under different ultrasound conditions (changing frequency and power) by using
conventional histology and electron microscopy methods.
Microcystis spp. were harvested in a lake from Azores (Portugal) and stored in the cool and dark until
transported to the laboratory. Cyanobacteria were cultured in liquid BG-11 axenic medium at 22ºC in an
incubator chamber, under continuous illumination (fluorescent cold white light).
Samples were collected and suspensions of cells (1ml each) were subjected to ultrasonic irradiation using
diverse ultrasonic equipment (UP100H; UP200S, sonoreactor UTR 200 and ultrasonic bath) and testing
different exposure times. All the experimental algal suspensions were exposed for 5 min to ultrasonication
(on ice for periods of 10s to avoid heating). After ultrasonication cyanobacteria growth was assessed for a
period of 14 days and structural changes in cells were evaluated by light (LM) and scanning electron
microscopy (SEM) examination. The results show growth inhibition of the cyanobacteria according to
intensity and power used in each ultrasonic device. The use of the most powerful devices (sonoreactor and
UP200S) resulted in a massive disrupting of cell walls with consequent cell death (Fig. 1e,f). Similar results
were obtained by Ahan et al. [1] and Nakano et al. [4] and showing cell wall disruption. However, even
after exposure to the most powerful instrumentation it was possible to detect some viable cells and after 14
days colonies were already visible. The results from light and electron microscopy showed noticeable
changes at the structural level such as disruption of cell gas vacuoles (arrowhead), colony disaggregation and
damage of cell walls of cells (Fig. 1c-f).
As a consequence, the use of ultrasounds to improve water quality from eutrophic waters must be considered
with careful in terms of efficiency and other complementary methods should be considered to assure good
water quality criteria. In addition, the effects of ultrasonication in other aquatic organisms require further
studies before using this technology to control algae blooms.