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      Graphene-based materials: the key for the successful application of pHEMA as a blood-contacting device

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          Abstract

          Incorporation of oxidized graphene improves pHEMA's mechanical properties enabling its application as bulk material in the design of blood-contacting devices. These composites keep pHEMA's biological properties, preventing thrombosis and infection.

          Abstract

          Thrombosis and infection are the leading causes of blood-contacting device (BCD) failure, mainly due to the poor performance of existing biomaterials. Poly(2-hydroxyethyl methacrylate) (pHEMA) has excellent hemocompatibility but the weak mechanical properties impair its use as a bulk material for BCD. As such, pHEMA has been explored as a coating, despite the instability and difficulty of attachment to the underlying polymer compromise its success. This work describes the hydrogel composites made of pHEMA and graphene-based materials (GBM) that meet the biological and mechanical requirements for a stand-alone BCD. Five GBM differing in thickness, oxidation degree, and lateral size were incorporated in pHEMA, revealing that only oxidized-GBM can reinforce pHEMA. pHEMA/oxidized-GBM composites are cytocompatible and prevent the adhesion of endothelial cells, blood platelets, and bacteria ( S. aureus), thus maintaining pHEMA's anti-adhesive properties. As a proof of concept, the thrombogenicity of the tubular prototypes of the best formulation (pHEMA/Graphene oxide (GO)) was evaluated in vivo, using a porcine arteriovenous-shunt model. pHEMA/GO conduits withstand the blood pressure and exhibit negligible adhesion of blood components, revealing better hemocompatibility than ePTFE, a commercial material for vascular access. Our findings reveal pHEMA/GO, a synthetic and off-the-shelf hydrogel, as a preeminent material for the design of blood-contacting devices that prevent thrombosis and bacterial adhesion.

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          Measurement of the elastic properties and intrinsic strength of monolayer graphene.

          We measured the elastic properties and intrinsic breaking strength of free-standing monolayer graphene membranes by nanoindentation in an atomic force microscope. The force-displacement behavior is interpreted within a framework of nonlinear elastic stress-strain response, and yields second- and third-order elastic stiffnesses of 340 newtons per meter (N m(-1)) and -690 Nm(-1), respectively. The breaking strength is 42 N m(-1) and represents the intrinsic strength of a defect-free sheet. These quantities correspond to a Young's modulus of E = 1.0 terapascals, third-order elastic stiffness of D = -2.0 terapascals, and intrinsic strength of sigma(int) = 130 gigapascals for bulk graphite. These experiments establish graphene as the strongest material ever measured, and show that atomically perfect nanoscale materials can be mechanically tested to deformations well beyond the linear regime.
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            Preparation and characterization of graphene oxide paper.

            Free-standing paper-like or foil-like materials are an integral part of our technological society. Their uses include protective layers, chemical filters, components of electrical batteries or supercapacitors, adhesive layers, electronic or optoelectronic components, and molecular storage. Inorganic 'paper-like' materials based on nanoscale components such as exfoliated vermiculite or mica platelets have been intensively studied and commercialized as protective coatings, high-temperature binders, dielectric barriers and gas-impermeable membranes. Carbon-based flexible graphite foils composed of stacked platelets of expanded graphite have long been used in packing and gasketing applications because of their chemical resistivity against most media, superior sealability over a wide temperature range, and impermeability to fluids. The discovery of carbon nanotubes brought about bucky paper, which displays excellent mechanical and electrical properties that make it potentially suitable for fuel cell and structural composite applications. Here we report the preparation and characterization of graphene oxide paper, a free-standing carbon-based membrane material made by flow-directed assembly of individual graphene oxide sheets. This new material outperforms many other paper-like materials in stiffness and strength. Its combination of macroscopic flexibility and stiffness is a result of a unique interlocking-tile arrangement of the nanoscale graphene oxide sheets.
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              Is Open Access

              Mechanical properties of graphene and graphene-based nanocomposites

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                Author and article information

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                Journal
                BSICCH
                Biomaterials Science
                Biomater. Sci.
                Royal Society of Chemistry (RSC)
                2047-4830
                2047-4849
                May 4 2021
                2021
                : 9
                : 9
                : 3362-3377
                Affiliations
                [1 ]INEB – Instituto de Engenharia Biomédica
                [2 ]Universidade do Porto
                [3 ]Portugal
                [4 ]i3S – Instituto de Inovação e Investigação em Saúde
                [5 ]Center for Biomedical Research
                [6 ]Medical University of Vienna
                [7 ]Vienna
                [8 ]Austria
                [9 ]Ludwig Boltzmann Institute for Cardiovascular Research
                [10 ]IFIMUP – Instituto de Física de Materiais Avançados
                [11 ]Nanotecnologias e Fotónica
                [12 ]Departamento de Física e Astronomia
                [13 ]Faculdade de Ciências
                [14 ]LEPABE – Laboratory for Process Engineering
                [15 ]Environment
                [16 ]Biotechnology and Energy
                [17 ]Faculty of Engineering
                [18 ]University of Porto
                Article
                10.1039/D0BM01699C
                33949373
                8ba7899f-61d5-4fa1-84d3-0b428ea2763e
                © 2021

                http://rsc.li/journals-terms-of-use

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