Costa, {MN}, Veigas B, Jacob {JM }, Santos {DS }, Gomes J, Baptista {PV}, Martins R, Inácio J, Fortunato E.
2014.
A low cost, safe, disposable, rapid and self-sustainable paper-based platform for diagnostic testing: Lab-on-paper, mar. Nanotechnology. 25, Number 9: IOP Publishing
AbstractThere is a strong interest in the use of biopolymers in the electronic and biomedical industries, mainly towards low-cost applications. The possibility of developing entirely new kinds of products based on cellulose is of current interest, in order to enhance and to add new functionalities to conventional paper-based products. We present our results towards the development of paper-based microfluidics for molecular diagnostic testing. Paper properties were evaluated and compared to nitrocellulose, the most commonly used material in lateral flow and other rapid tests. Focusing on the use of paper as a substrate for microfluidic applications, through an eco-friendly wax-printing technology, we present three main and distinct colorimetric approaches: (i) enzymatic reactions (glucose detection); (ii) immunoassays (antibodies anti-Leishmania detection); (iii) nucleic acid sequence identification (Mycobacterium tuberculosis complex detection). Colorimetric glucose quantification was achieved through enzymatic reactions performed within specific zones of the paper-based device. The colouration achieved increased with growing glucose concentration and was highly homogeneous, covering all the surface of the paper reaction zones in a 3D sensor format. These devices showed a major advantage when compared to the 2D lateral flow glucose sensors, where some carryover of the coloured products usually occurs. The detection of anti-Leishmania antibodies in canine sera was conceptually achieved using a paper-based 96-well enzyme-linked immunosorbent assay format. However, optimization is still needed for this test, regarding the efficiency of the immobilization of antigens on the cellulose fibres. The detection of Mycobacterium tuberculosis nucleic acids integrated with a non-cross-linking gold nanoprobe detection scheme was also achieved in a wax-printed 384-well paper-based microplate, by the hybridization with a species-specific probe. The obtained results with the above-mentioned proof-of-concept sensors are thus promising towards the future development of simple and cost-effective paper-based diagnostic devices.
Gaspar, D, Fernandes SN, dea Oliveira G, Fernandes JG, Grey P, Pontes RV, Pereira L, Martins R, Godinho MH, Fortunato E.
2014.
{Nanocrystalline cellulose applied simultaneously as the gate dielectric and\~{}the substrate in flexible field effect transistors.}, mar. Nanotechnology. 25:94008., Number 9
AbstractCotton-based nanocrystalline cellulose (NCC), also known as nanopaper, one of the major sources of renewable materials, is a promising substrate and component for producing low cost fully recyclable flexible paper electronic devices and systems due to its properties (lightweight, stiffness, non-toxicity, transparency, low thermal expansion, gas impermeability and improved mechanical properties).Here, we have demonstrated for the first time a thin transparent nanopaper-based field effect transistor (FET) where NCC is simultaneously used as the substrate and as the gate dielectric layer in an \{$\backslash$textquoteright\}interstrate\{$\backslash$textquoteright\} structure, since the device is built on both sides of the NCC films; while the active channel layer is based on oxide amorphous semiconductors, the gate electrode is based on a transparent conductive oxide.Such hybrid FETs present excellent operating characteristics such as high channel saturation mobility (>7\~{}cm(2)\~{}V (-1)\~{}s(-1)), drain-source current on/off modulation ratio higher than 10(5), enhancement n-type operation and subthreshold gate voltage swing of 2.11\~{}V/decade. The NCC film FET characteristics have been measured in air ambient conditions and present good stability, after two weeks of being processed, without any type of encapsulation or passivation layer. The results obtained are comparable to ones produced for conventional cellulose paper, marking this out as a promising approach for attaining high-performance disposable electronics such as paper displays, smart labels, smart packaging, RFID (radio-frequency identification) and point-of-care systems for self-analysis in bioscience applications, among others.
Pereira, L, Gaspar D, Guerin D, a Delattre, Fortunato E, Martins R.
2014.
{The influence of fibril composition and dimension on the performance of paper gated oxide transistors.}, mar. Nanotechnology. 25:094007., Number 9
AbstractPaper electronics is a topic of great interest due the possibility of having low-cost, disposable and recyclable electronic devices. The final goal is to make paper itself an active part of such devices. In this work we present new approaches in the selection of tailored paper, aiming to use it simultaneously as substrate and dielectric in oxide based paper field effect transistors (FETs). From the work performed, it was observed that the gate leakage current in paper FETs can be reduced using a dense microfiber/nanofiber cellulose paper as the dielectric. Also, the stability of these devices against changes in relative humidity is improved. On other hand, if the pH of the microfiber/nanofiber cellulose pulp is modified by the addition of HCl, the saturation mobility of the devices increases up to 16 cm(2) V(-1) s(-1), with an ION/IOFF ratio close to 10(5).
Amaro, P, Szabo CI, Schlesser S, Gumberidze A, Kessler EG, Henins A, Le Bigot EO, Trassinelli M, Isac JM, Travers P, Guerra M, Santos JP, Indelicato P.
2014.
A vacuum double-crystal spectrometer for reference-free X-ray spectroscopy of highly charged ions, Jun 01. Radiation Physics and Chemistry. 98:132-149., Number C: Elsevier
AbstractRadiation Physics and Chemistry, 98 + (2014) 132-149. doi:10.1016/j.radphyschem.2014.01.015
Barbosa, DJ, Serrat R, Mirra S, Quevedo M, Gomez de Barreda E, Avila J, Ferreira LM, Branco PS, Fernandes E, de Bastos ML, Capela JP, Soriano E, Carvalho F.
2014.
The Mixture of ``Ecstasy{''} and Its Metabolites Impairs Mitochondrial Fusion/Fission Equilibrium and Trafficking in Hippocampal Neurons, at In Vivo Relevant Concentrations, JUN. TOXICOLOGICAL SCIENCES. 139, Number 2
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F. S. Silva, T, M. D. R. S. Martins L, Guedes da Silva FMC, Kuznetsov ML, Fernandes AR, Silva A, Pan C-J, Lee J-F, Hwang B-J, J. L. Pombeiro A.
2014.
Cobalt Complexes with Pyrazole Ligands as Catalyst Precursors for the Peroxidative Oxidation of Cyclohexane: X-ray Absorption Spectroscopy Studies and Biological Applications, 2014/04/01. Chemistry – An Asian Journal. 9(4):1132-1143.: WILEY-VCH Verlag
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Gaspar, D, Pimentel AC, Mendes MJ, Mateus T, Falcão BP, Leitão JP, Soares J, Araújo A, Vicente A, Filonovich SA, Águas H, Martins R, Ferreira I.
2014.
Ag and Sn Nanoparticles to Enhance the Near-Infrared Absorbance of a-Si:H Thin Films. Plasmonics. 9(5):1015–1023.
AbstractSilver (Ag) and tin (Sn) nanoparticles (NPs) were deposited by thermal evaporation onto heated glass substrates with a good control of size, shape and surface coverage. This process has the advantage of allowing the fabrication of thin-film solar cells with incorporated NPs without vacuum break, since it does not require chemical processes or post-deposition annealing. The X-ray diffraction, TEM and SEM properties are correlated with optical measurements and amorphous silicon hydrogenated (a-Si:H) films deposited on top of both types of NPs show enhanced absorbance in the near-infrared. The results are interpreted with electromagnetic modelling performed with Mie theory. A broad emission in the near-infrared region is considerably increased after covering the Ag nanoparticles with an a-Si:H layer. Such effect may be of interest for possible down-conversion mechanisms in novel photovoltaic devices.
Borges, JP, Canejo JP, Fernandes S, Brogueira P, Godinho MH.
2014.
Cellulose-Based Liquid Crystalline Composite Systems. Nanocellulose Polymer Nanocomposites: Fundamentals and Applications. (
Thakur, Vijay Kumar, Ed.).:215-235., Hoboken, NJ, USA: John Wiley & Sons, Inc.