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1.
Biomacromolecules ; 9(6): 1643-51, 2008 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-18491942

RESUMEN

Triggered biodegradable composites made entirely from renewable resources are urgently sought after to improve material recyclability or be able to divert materials from waste streams. Many biobased polymers and natural fibers usually display poor interfacial adhesion when combined in a composite material. Here we propose a way to modify the surfaces of natural fibers by utilizing bacteria ( Acetobacter xylinum) to deposit nanosized bacterial cellulose around natural fibers, which enhances their adhesion to renewable polymers. This paper describes the process of modifying large quantities of natural fibers with bacterial cellulose through their use as substrates for bacteria during fermentation. The modified fibers were characterized by scanning electron microscopy, single fiber tensile tests, X-ray photoelectron spectroscopy, and inverse gas chromatography to determine their surface and mechanical properties. The practical adhesion between the modified fibers and the renewable polymers cellulose acetate butyrate and poly(L-lactic acid) was quantified using the single fiber pullout test.


Asunto(s)
Celulosa/biosíntesis , Gluconacetobacter xylinus/química , Nanocompuestos/química , Hojas de la Planta/ultraestructura , Acetona/química , Agave/anatomía & histología , Reactores Biológicos , Cannabis/anatomía & histología , Celulosa/ultraestructura , Fermentación , Gluconacetobacter xylinus/metabolismo , Nanocompuestos/ultraestructura , Resistencia al Corte , Solventes/química , Propiedades de Superficie , Resistencia a la Tracción
2.
Sci Rep ; 8(1): 14041, 2018 09 19.
Artículo en Inglés | MEDLINE | ID: mdl-30232392

RESUMEN

We invented the first non-metallic, self-adhesive and dry biosignalling electrode. The PEDOT polymer electrode changes its aggregate state and conductivity by a light curing procedure. The electrode can be applied as a gel underneath hair without shaving. With the aid of blue light, the electrode can be hardened within a few seconds at the desired location on the scalp. The cured polymer electrode is highly conductive and can be applied on a very small location. Unlike other EEG electrodes, our electrode does not lose conductivity upon drying. Furthermore, our electrode strongly bonds to skin and does not require any additional adhesive. Short circuits due to an outflow of gel are prevented with this technique. Therefore, the PEDOT polymer electrode is extremely well suited for applications that, up to now, have been challenging, such as non-invasive EEG recordings from awake and freely moving animals, EEG recordings from preterm babies in the neonatal intensive care unit or long-term recordings in the case of sleep monitoring or epilepsy diagnostics. We addressed two technical questions in this work. First, is the EEG recorded with polymer electrodes comparable to a standard EEG? Second, is it possible to record full-band EEGs with our electrodes?


Asunto(s)
Electroencefalografía/instrumentación , Polímeros/química , Sueño/fisiología , Animales , Animales Recién Nacidos , Impedancia Eléctrica , Electrodos , Electroencefalografía/veterinaria , Geles , Humanos , Modelos Animales , Piel , Porcinos
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