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Dive into the research topics where J. Nunes-Pereira is active.

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Featured researches published by J. Nunes-Pereira.


Journal of Materials Science | 2012

The effect of nanotube surface oxidation on the electrical properties of multiwall carbon nanotube/poly(vinylidene fluoride) composites

Sónia A. C. Carabineiro; M.F.R. Pereira; J. Nunes-Pereira; João P. Silva; Cristina Caparrós; Vitor Sencadas; S. Lanceros-Méndez

Carbon nanotube/poly(vinylidene fluoride) (CNT/PVDF) composites were prepared using CNT with different oxidation and thermal treatments. The oxidation procedure leads to CNT with the most acidic characteristics that lower the degree of crystallinity of the polymer and contribute to a large increase of the dielectric constant. The surface treatments, in general, increase the percolation threshold and decrease conductivity. The surface treatments do not seem to affect CNT interactions and similar degrees of dispersion are achieved in all cases, as shown by the SEM results. The maximum value of the dielectric constant is ~630. It is demonstrated that the composite conductivity can be attributed to a hopping mechanism that is strongly affected by the surface treatment of the CNT.


Nature Protocols | 2018

Electroactive poly(vinylidene fluoride)-based structures for advanced applications

Clarisse Ribeiro; Carlos M. Costa; Daniela M. Correia; J. Nunes-Pereira; Juliana T. Oliveira; Pedro Libânio Abreu Martins; R. Gonçalves; V. F. Cardoso; S. Lanceros-Méndez

Poly(vinylidene fluoride) (PVDF) and its copolymers are the polymers with the highest dielectric constants and electroactive responses, including piezoelectric, pyroelectric and ferroelectric effects. This semicrystalline polymer can crystallize in five different forms, each related to a different chain conformation. Of these different phases, the β phase is the one with the highest dipolar moment and the highest piezoelectric response; therefore, it is the most interesting for a diverse range of applications. Thus, a variety of processing methods have been developed to induce the formation of the polymer β phase. In addition, PVDF has the advantage of being easily processable, flexible and low-cost. In this protocol, we present a number of reproducible and effective methods to produce β-PVDF-based morphologies/structures in the form of dense films, porous films, 3D scaffolds, patterned structures, fibers and spheres. These structures can be fabricated by different processing techniques, including doctor blade, spin coating, printing technologies, non-solvent-induced phase separation (NIPS), temperature-induced phase separation (TIPS), solvent-casting particulate leaching, solvent-casting using a 3D nylon template, freeze extraction with a 3D poly(vinyl alcohol) (PVA) template, replica molding, and electrospinning or electrospray, with the fabrication method depending on the desired characteristics of the structure. The developed electroactive structures have shown potential to be used in a wide range of applications, including the formation of sensors and actuators, in biomedicine, for energy generation and storage, and as filtration membranes.


Journal of Hazardous Materials | 2017

Membranes based on polymer miscibility for selective transport and separation of metallic ions

Djamila Zioui; Omar Arous; Nabil Mameri; Hacène Kerdjoudj; M. San Sebastian; José Luis Vilas; J. Nunes-Pereira; S. Lanceros-Méndez

Polymer inclusion membranes (PIM) used for selective transport and separation of metallic ions have emerged in recent times. Their expansion depends on the method of preparation and their suitable structure and physico-chemical characteristics. In this paper, a novel category of membranes for ions separation is reported. The membranes were synthesized by thermally induced phase separation using a mixture of polyvinylidene fluoride (PVDF) and cellulose triacetate (CTA) plasticized by tris(2-ethylhexyl) phosphate (TEHP) and with di-(2-ethylhexyl) phosphoric acid (D2EHPA) incorporated into the polymer as carrier to increase specific interactions between polymers. PIM membrane exhibited a hydrophobic (∼100°) and thermally stable up to ∼200°C porous homogenous structure. The transport of Ni(II), Zn(II) and Pb(II) from aqueous solutions was studied by competitive transport across polymer inclusion membranes (PIM). Competitive transport of ions in solution across PIM provide the selectivity order: Ni2+ (45%)>Pb2+ (35%)>Zn2+ (5%). A long-term transport experiment was carried out to study the durability of the system.


Archive | 2018

3.9 Piezoelectric Energy Production

J. Nunes-Pereira; P. Costa; S. Lanceros-Méndez

The concept of piezoelectric energy production is based on energy-harvesting devices using generation materials such as single crystals, ceramics, polymers, and composites. These production systems can harvest wasted environmental energy and convert it essentially into electrical energy. There are different nano- and microscale power harvesters which are increasingly useful for powering mobile electronics and low-power devices, even in hardly accessible areas. Despite many efforts in the development of new materials, the most widely used materials in device applications remain the ceramics of the lead zirconate titanate family, since they still present the higher output performances in the range of milliwatts of generated power.


Journal of Power Sources | 2015

Polymer composites and blends for battery separators: State of the art, challenges and future trends

J. Nunes-Pereira; Carlos M. Costa; S. Lanceros-Méndez


Sensors and Actuators A-physical | 2013

Energy harvesting performance of piezoelectric electrospun polymer fibers and polymer/ceramic composites

J. Nunes-Pereira; Vitor Sencadas; V. Correia; J. G. Rocha; S. Lanceros-Méndez


Journal of Electroanalytical Chemistry | 2013

Microporous membranes of NaY zeolite/poly(vinylidene fluoride–trifluoroethylene) for Li-ion battery separators

J. Nunes-Pereira; A. C. Lopes; Carlos M. Costa; L. C. Rodrigues; Maria Manuela Silva; S. Lanceros-Méndez


Electroanalysis | 2012

Porous membranes of montmorillonite/poly(vinylidene fluoride-trifluorethylene) for Li-ion battery separators

J. Nunes-Pereira; A. C. Lopes; Carlos M. Costa; Rita Daniela Barros Leones; Maria Manuela Silva; S. Lanceros-Méndez


Polymer Testing | 2014

Microstructural variations of poly(vinylidene fluoride co-hexafluoropropylene) and their influence on the thermal, dielectric and piezoelectric properties

Ricardo E. Sousa; J. Nunes-Pereira; José Ferreira; Carlos M. Costa; A. V. Machado; Maria Manuela Silva; S. Lanceros-Méndez


Polymer Testing | 2015

Poly(vinylidene fluoride) and copolymers as porous membranes for tissue engineering applications

J. Nunes-Pereira; S. Ribeiro; Clarisse Ribeiro; Carolyn Jane Gombek; F. M. Gama; Andreia C. Gomes; Darrell Alec Patterson; S. Lanceros-Méndez

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Vitor Sencadas

University of Wollongong

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