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Dario Pisignano

Researcher at University of Pisa

Publications -  387
Citations -  12234

Dario Pisignano is an academic researcher from University of Pisa. The author has contributed to research in topics: Nanofiber & Electrospinning. The author has an hindex of 50, co-authored 368 publications receiving 10706 citations. Previous affiliations of Dario Pisignano include Kaunas University of Technology & Istituto Nazionale di Fisica Nucleare.

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High performance piezoelectric devices based on aligned arrays of nanofibers of poly(vinylidenefluoride-co-trifluoroethylene)

TL;DR: This work introduces a large area, flexible piezoelectric material that consists of sheets of electrospun fibres of the polymer poly[(vinylidenefluoride-co-trifluoroethylene] in order to enable ultra-high sensitivity for measuring pressure, even at exceptionally small values (0.1 Pa).
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Industrial Upscaling of Electrospinning and Applications of Polymer Nanofibers: A Review

TL;DR: In this paper, the authors focus on relevant technological approaches developed by research, which show perspectives for scaling-up and for fulfilling requirements of industrial production in terms of throughput, accuracy, and functionality of the realized nanofibers.
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Biocompatible surfactants for water-in-fluorocarbon emulsions

TL;DR: A novel class of fluorosurfactants that are synthesized by coupling oligomeric perfluorinated polyethers (PFPE) with polyethyleneglycol (PEG) stabilize water-in-fluorocarbon oil emulsions and can be used for in vitro translation (IVT), as well as encapsulation and incubation of single cells.
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Drop-based microfluidic devices for encapsulation of single cells

TL;DR: It is shown that single hybridoma cells in 33 pL drops secrete detectable concentrations of antibodies in only 6 h and remain fully viable and highly flexible and adaptable to a variety of cell-based assays.
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Making silicon hydrophobic: wettability control by two-lengthscale simultaneous patterning with femtosecond laser irradiation

TL;DR: In this paper, the authors report on the wettability properties of silicon surfaces, simultaneously structured on the micrometer-scale and the nanometre-scale by femtosecond (fs) laser irradiation to render silicon hydrophobic.